EMS Electrode Pad Conductive Silver Fiber Pad for Muscle Stimulation

Sale price$33.00

EMS Electrode Pad Conductive Silver Fiber Pad for Muscle Stimulation

High-performance EMS Electrode Pad designed for EMS/TENS-compatible signal transfer and electrode applications. These pads feature a pure silver fiber layer for superior conductivity and skin-contact comfort.

Key Benefits:

  • Excellent Conductivity: Pure silver fiber supports even current distribution for consistent EMS signal transfer.
  • Skin-Contact Textile Surface: Soft silver textile surface is designed for comfortable electrode applications.
  • Reusable & Durable: Designed for long-lasting performance through repeated use cycles.
  • Universal Compatibility: Standard connection type suitable for most popular EMS and TENS devices.

Technical Specifications:

  • Material: Silver Fiber Non-woven Fabric
  • Conductivity: High electrical performance
  • Size: 50 x 50 mm (standard)
  • Reusable: Yes

Care Instructions:

Wipe with a damp cloth after use. Do not submerge in water. Store in a cool, dry place.

Size: Square Meter

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Type

Electrode

Piezoresistive

Raw Material

Silver

Carbon

Electrical Resistance

0.1 -1 Ω

10⁴–10⁷ Ω

Piezoresistive Resistance Data Sheet

A sandwich structure using conductive PCB silver thin films on the top and bottom layers. Under a 0–2 kg applied force over a 1 cm-diameter contact area, the values shown represent the average of five measurements. This dataset serves as a material performance reference.



Table comparing pressure and electrical resistance measurements across fabric weights
Diagram of a layered piezoresistive textile sensor with zebra-pattern electrodes
01

Piezoresistive

A piezoresistive textile sensor converts applied pressure into resistance changes using a layered fabric structure. Zebra-pattern conductive electrodes sandwich a carbon-based piezoresistive fabric. Under compression, internal contact points increase, lowering resistance. Finer electrode line spacing generates denser sensing matrices, improving spatial resolution, flexibility, and signal stability for wearables, soft robotics, and pressure-mapping systems.






Exploded diagram of a capacitive textile pressure sensor
02

Capacitive

A capacitive textile sensor consists of flexible top and bottom conductive electrodes separated by a soft dielectric textile layer. When pressure is applied, the distance between electrodes decreases and the effective dielectric structure changes, resulting in a measurable capacitance variation. This fabric-based architecture provides excellent conformability, stable signal response, and reliable pressure sensing on curved or dynamic surfaces.


01

Piezoresistive

A piezoresistive textile sensor converts applied pressure into resistance changes using a layered fabric structure. Zebra-pattern conductive electrodes sandwich a carbon-based piezoresistive fabric. Under compression, internal contact points increase, lowering resistance. Finer electrode line spacing generates denser sensing matrices, improving spatial resolution, flexibility, and signal stability for wearables, soft robotics, and pressure-mapping systems.






02

Capacitive

A capacitive textile sensor consists of flexible top and bottom conductive electrodes separated by a soft dielectric textile layer. When pressure is applied, the distance between electrodes decreases and the effective dielectric structure changes, resulting in a measurable capacitance variation. This fabric-based architecture provides excellent conformability, stable signal response, and reliable pressure sensing on curved or dynamic surfaces.


Diagram of a layered piezoresistive textile sensor with zebra-pattern electrodesExploded diagram of a capacitive textile pressure sensor

Every sensing application comes with unique technical requirements

We provide flexible customization services across electrode layout, pattern geometry, and conductive textile structures. In addition to silver-based materials, we also offer alternative conductive options such as stainless steel and other alloy-based conductive textiles to meet different performance, durability, and cost targets.

Printed matrix electrode pattern on white textile

Matrix Layout

Printed Y-shaped conductive traces on white textile

Flexible Trace

Printed high-density parallel conductive pattern on white textile

High Density Pattern

FAQ