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Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering

Non-Magnetic Connections
Non-magnetic connections minimize micro-microphone modulations in the current path. In a power supply capacitor, the current flows not only through the coil, but also through the connecting wires and contact points — and this is exactly where ferromagnetic materials can produce undesired effects. Non-magnetic connection materials avoid magnetization and hysteresis in the conductor and thus reduce current-synchronous, very fine impedance modulations. This is a micro-microphonic measure in the actual power path: The connection is closer to the ideal conductor, without “magnetic interference.” In addition, there is additional electrotechnical benefit because non-magnetic, highly conductive materials often lower and stabilize contact and transition resistances. As a result, energy is available more evenly at the amplifier stage — and the sound remains quieter and more controlled.
Tonal effects
- quieter background and less “grit” with complex music
- more stable transients because the current path is less finely modulated
- clearer contours and cleaner room images at high levels
- more consistent sound quality due to more stable contact and conduction conditions
Damping Encapsulation/Bonding
Potting or bonding with a vibration-damping material reduces vibrations, stabilizes contact zones and minimizes mechanical stimulation caused by the electrical signal, which can otherwise couple back into the signal as an undesired nonlinearity via electromagnetic interaction. Active and passive macro-microphony is thus effectively suppressed.
Induction free layout
In AC applications, any conductor geometry potentially looks like a small inductor, even if it doesn't look directly like a coil on the outside. If a resistor is wound or unfavorably guided, an inductive residual component is produced. An induction-free layout constructively reduces this parasitic inductance — for example through layer technology (MOX), bifilar winding or flat thin-film/film structures.
The aim is to achieve as purely ohmic behavior as possible over the relevant frequency range.
Tight Tolerances
Tight tolerances in capacitance, inductance, and resistance ensure that capacitors of one type are very close together in terms of their electrical properties. In crossovers, the left and right channels therefore work virtually identically: crossover frequencies, level ratios and phase positions match closely. This is the basis for stable, precise stereo imaging and reproducible results — in series production and also after service.
Tonal Effects
- precise, stable soundstage without drifting
- Coherent overall impression: left and right channels fuse into a single, seamless whole
- characteristic sound is reliably retained even after component replacement/repair
- More stable virtual center and clearer spatial layering