Introduction Of Manganese-Iron Phosphide as Hydrogen Evolution Reaction Electrocatalyst Based on Their Poly Aspartic Acid Complexes

Soltani, Elham and Bagher Gholivand, Mohammad and Amiri, Masoud (2023) Introduction Of Manganese-Iron Phosphide as Hydrogen Evolution Reaction Electrocatalyst Based on Their Poly Aspartic Acid Complexes. International Journal of Hydrogen Energy, 51. pp. 269-280. ISSN 1879-3487

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Abstract

Electrocatalysts play an important role in water splitting into hydrogen and oxygen, resulting in a clean and sustainable source of hydrogen energy. However, to make this process affordable and efficient, electrocatalysts that are highly active and low-cost are necessary. This study describes the use of poly aspartic acid ligand to coordinate the metal ions Fe3+ and Mn2+, which are then precipitated, carbonized, and phosphorized to create MnFe/P/C coordination polymer structures. These structures serve as electrocatalysts for HER and exhibit effective activity, with an overpotential of 143 mV at the current density of 10 mA/cm2 and a Tafel slope of 58.4 mVdec−1. This performance surpasses that of oxide electrocatalysts. The high surface area of the MnFe/P/C nanocomposite contributes to its durability and efficiency. This study suggests that using transition metals and amino acids to construct electrocatalysts could lead to further advancements in HER electrocatalysts.

Item Type: Article
Uncontrolled Keywords: Electrocatalysts, Hydrogen Evolution Reaction (HER), Poly Aspartic Acid, MnFe/P/C Nanocomposite, Transition Metals.
Subjects: Q Science > Q Science (General)
Q Science > QD Chemistry
Divisions: Department of Pharmacy > Research papers
Depositing User: ePrints Depositor
Date Deposited: 24 Aug 2025 12:38
Last Modified: 24 Aug 2025 12:38
URI: https://eprints.cihanuniversity.edu.iq/id/eprint/3966

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