HXP Anode Electrode for Alkaline Water Electrolysis
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HXP Anode Electrode for Alkaline Water Electrolysis
Thasar S.r.l.
Product Overview
The HXP Anode Electrode for Alkaline Water Electrolysis (HXP-an) is a high-performance
PGM-free anode designed for anion exchange membrane (AEM) and alkaline water electrolysis applications. Engineered with a nickel-iron (Ni-Fe) catalyst
it offers long-term durability while maintaining excellent electrochemical activity in alkaline environments. The optimized surface treatment maximizes the electrochemical surface area
enhancing reaction efficiency and stability over extended operation. The HXP-an is available in various thicknesses and dimensions
allowing for customization based on specific application requirements.
Key Features
1.Compatible with AEM and alkaline water electrolysis
2.PGM-free Ni-Fe catalyst
reducing costs while maintaining high efficiency
3.Optimized surface structure for enhanced reaction kinetics and reduced overpotential
4.High durability
ensuring stable long-term performance
5.Customizable in thickness and dimensions
Technical Specifications
•Materials : Nickel
Iron
•Pore size : 130 ppi (pores per inch)
•Porosity : 95 ~ 98%
•Thickness : 0.1 ~ 35 mm (before placing an order
please reach out to us at sales@fuelcellstore.com to inquire about the thicknesses available). Standard anode electrodes will have the thickness of ~300 micrometers. Custom thicknesses may require a minimum order quantity value.
•Dimensions : Length < 300 mm
Width < 200mm
Applications
The HXP-an is suitable for both laboratory research and industrial-scale hydrogen production. Ideal for electrode performance evaluations such as half-cell and single-cell testing
making it a preferred choice for R&D and material validation. Its scalable architecture and structural robustness make it suitable for integration into full-scale AEM/Alkaline water electrolysis stacks.
Sheet Size: Currently
sheet sizes of 30 cm x 20 cm will be offered.
HXP-an Electrode Technical Specification Sheet
2-3 week lead time is to be expected.