Gold conductive fabric is a flexible shielding material with conductive properties, which is composed of multiple layers of fiber materials, conductive materials and functional materials. It is made by coating copper and nickel metals on the surface of the fabric base, followed by treatment with water-based graphene electromagnetic shielding coating. It can be made into electromagnetic shielding devices such as conductive fabric tapes, die-cut materials of various shapes, and conductive gaskets of various shapes by coating PU sponges.
Advantages of 50μm Gold Conductive Cloth
Excellent conductivity: The surface resistance is as low as ≤0.05Ω, providing efficient current conduction and electromagnetic shielding capabilities.
High adhesion and durability: The gold plating layer has an adhesion of ≥5 grade, with strong anti-peeling property, ensuring no falling off during long-term use.
Corrosion resistance: The gold plating layer is anti-oxidation and resistant to acid and alkali, suitable for humid or corrosive environments.
Lightweight and flexibility: With a weight of only 60g/㎡ and a thickness of 51μm, it combines flexibility and strength, and is easy to fit curved structures.
Process consistency: The surface has no defects such as wrinkles, tears, or bubbles (visual inspection), and the edges are neat, ensuring the stability of mass production.
Applications of 50μm Gold Conductive Cloth
Used for electromagnetic interference shielding of internal circuits of mobile phones/laptops, 5G modules, and high-frequency connectors, utilizing ultra-low resistance to block signal interference.
Its corrosion resistance makes it suitable for ECG electrodes and wearable medical devices, and the gold surface reduces the risk of skin allergies.
Such as conductive contacts for smart watch straps, conductive gaskets for earphones, etc., which take into account both aesthetics (golden appearance) and signal stability.
Shielding gaskets for satellite communication equipment and military radar systems, adapting to extreme temperature and humidity environments (storage conditions support 6℃~34℃).
It has good light transmittance and can be used for EMI windows that require light transmission.
Related Testing Equipment
► Precision electronic thickness gauge
► Density testing electronic balance
► High-precision image measuring instrument
► 60° glossiness tester
► High-precision color difference tester
► DC low resistance tester
► Four-probe method resistance tester
► Flame retardant tester
► Optical microscope
► Solvent resistance tester
► Abrasion resistance tester


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The alcohol-resistant series of black conductive fabrics are made by coating the surface of polyester fibers with metals such as copper and nickel, followed by treating a single surface with a black water-based graphene electromagnetic shielding coating. (1) The combination of copper and nickel provides excellent conductivity. (2) The inherent conductive properties of the graphene electromagnetic shielding coating can greatly enhance the conductivity of the composite material, achieving good shielding effectiveness in the frequency range from 10MHz to 3GHz. (3) The polymer coating is resistant to some solvents like alcohol, which can meet special process requirements. (4) The blackening treatment also has properties such as light shielding, oxidation resistance, corrosion resistance, and fingerprint resistance.

The alcohol-resistant series of black conductive fabrics are made by coating the surface of polyester fibers with metals such as copper and nickel, followed by treating a single surface with a black water-based graphene electromagnetic shielding coating. (1) The combination of copper and nickel provides excellent conductivity. (2) The inherent conductive properties of the graphene electromagnetic shielding coating can greatly enhance the conductivity of the composite material, achieving good shielding effectiveness in the frequency range from 10MHz to 3GHz. (3) The polymer coating is resistant to some solvents like alcohol, which can meet special process requirements. (4) The blackening treatment also has properties such as light shielding, oxidation resistance, corrosion resistance, and fingerprint resistance.

The 30μm insulating alcohol-resistant black conductive cloth is made by coating the surface of polyester fibers with metals such as copper and nickel, followed by treating one surface with a black water-based graphene electromagnetic shielding coating. The black insulating surface has an insulation resistance of >10¹⁰Ω and a thickness of 38±3μm. The insulating layer presents a low-matte blue-black color with a glossiness of 0.5 and stable color difference (Lab value: 26.45/-0.17/-1.12). It adopts a purely water-based and environmentally friendly coating (free of VOCs) and features excellent wear resistance and alcohol resistance. It supports direct die-cutting or composite adhesive layer processing, and is suitable for electromagnetic shielding, anti-static protection of precision electronic components, and industrial corrosion-resistant scenarios.

The 30-micron wear-resistant black conductive fabric is a high-performance composite material. It uses polyester fiber as the base material, with copper-nickel alloy coated on both sides to provide basic conductivity (surface resistance ≤ 0.05Ω), and a black water-based graphene coating applied on one side. Its core structure consists of a black wear-resistant surface (matte black) paired with a silver-gray conductive surface, offering double-sided conductive functionality. The actually measured thickness of the product is 33-34μm, featuring excellent conductive performance. Its matte black surface presents a low-gloss effect (glossiness 3.2-3.4gs) with stable color (color difference values 25.74/0.05/0.12), and special emphasis is placed on its wear-resistant property. This conductive fabric is manufactured using a pure water-based environmental protection coating process, ensuring no VOC residues and meeting safety and environmental protection requirements. The product has a width of 1100±20mm, which can be directly die-cut or laminated with adhesive tape for easy integration and application. It is suitable for electronic application scenarios such as electromagnetic shielding and grounding that require high conductivity, wear resistance and environmental protection.
