Construction of a CoP/MnP/Cu3P heterojunction for efficient methanol oxidation-assisted seawater splitting

Abstract

Methanol oxidation-assisted direct seawater electrolysis has emerged as a potent technology for efficient hydrogen (H2) production alongside high-value chemicals such as formic acid and formaldehyde. However, the large-scale application of this technology heavily relies on developing highly active and robust bifunctional electrocatalysts for methanol oxidation and hydrogen evolution reactions (MOR/HER). Herein, we report a simple hydrothermal-phosphorylation method to synthesize a heterostructured catalyst on copper foam, comprising CoP, MnP, and Cu3P (CoP/MnP/Cu3P@CF). The synergistic interaction among the heterogeneous components endowed CoP/MnP/Cu3P@CF with excellent MOR, oxygen evolution reaction (OER), and HER performance in alkaline seawater electrolytes. Notably, the MOR-assisted CoP/MnP/Cu3P@CF-based seawater electrolyzer catalyst required only 1.410 V to achieve a current density of 10 mA cm−2, significantly lower than the 1.681 V required for an OER–HER seawater electrolyzer. Additionally, the MOR-assisted electrolyzer exhibits high faradaic efficiency and cycling stability, offering the potential for sustainable energy-efficient H2 production.

Graphical abstract: Construction of a CoP/MnP/Cu3P heterojunction for efficient methanol oxidation-assisted seawater splitting

Supplementary files

Article information

Article type
Research Article
Submitted
06 Dec 2024
Accepted
20 Jan 2025
First published
22 Jan 2025

Mater. Chem. Front., 2025, Advance Article

Construction of a CoP/MnP/Cu3P heterojunction for efficient methanol oxidation-assisted seawater splitting

W. Liu, M. Zhou, J. Zhang, W. Liu, D. Qin, Q. Liu, G. Hu and X. Liu, Mater. Chem. Front., 2025, Advance Article , DOI: 10.1039/D4QM01067A

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