Etched Cathode Foil F1

Etched Cathode Foil F1

Description

Product name Capacitanoe AL Purity Thickness Tensil Strength Bending Strength Copper Chlorine
(uflcm2) % (um) (kg/cm) (Cycdles) mg/m2 m/m2
F-105 50 > 98.0 18  2 >1.6 >70 《5.0 《1.0
F210 90 20土 2 >1.6 >70
F215 120 21土 2 >15 >70
F315 150 28 3 >1.6 >80
F-320 200 28土3 >1.6 >80
F-325 250 30士 3 >1.6 >70
F-420 220 36土 4 >1.8 >90 <8.0 <2.0
F435 350 36 土4 >1.8 >90
F-440 400 36土 4 >1.8 >90
F-445 450 36土 4 >18 >90
Standard Capacitance >-10% Foil Hardness: HARD

 

Features

High Surface Area: Etched cathode foil has a higher surface area compared to non-etched foils due to a series of microscopically small holes on its surface. This improved surface area facilitates better ion flow and increased electrode capacity.

Low Internal Resistance: Due to its specific manufacturing process, etched cathode foil has a uniform and thin layer of micro-pores, allowing increased electron mobility and reducing internal resistance.

High Conductivity: Etched cathode foil has a high electrical conductivity due to its thin layer and highly porous surface, enabling more efficient energy transfer and storage.

Stable Performance: Etched cathode foil has a stable and reliable performance due to its uniformity in terms of thickness, porosity and surface morphology.

Increased Durability: Due to its uniformity in thickness and porosity, etched cathode foil is able to withstand mechanical stress, material fatigue and prolonged cycling compared to non-etched foils.

Improved Safety: Etched cathode foil is less prone to overheating and thermal runaway compared to non-etched foils due to increased thermal dissipation and reduced internal resistance.

Cost-effective: Etched cathode foil is a cost-effective solution for many energy storage applications as it enables improved performance and longer lifespan of batteries, resulting in lower maintenance costs and longer service life.

High Surface Area: Etched cathode foil has a higher surface area compared to non-etched foils due to a series of microscopically small holes on its surface. This improved surface area facilitates better ion flow and increased electrode capacity.

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