Issue 17, 2023

Formation of Prussian blue analog coronal nanomaterials and their conversion into Mn–Co-mixed selenide for enhanced electrocatalytic oxygen evolution

Abstract

Improving overall water electrolysis efficiency is challenging due to difficulties in designing high-efficiency, non-noble metal oxygen evolution electrocatalysts. The key to success lies in improving the electrocatalyst's specific surface area and optimizing its electronic structure. In this study, a novel method for obtaining coronal manganese cobalt Prussian blue analogues (MnCo PBA) with high specific surface area was developed through simple chemical etching. The MnSe/CoSe2 composite, derived from coronal MnCo PBA, retains the high specific area characteristics of the precursor. The resulting coronal MnSe/CoSe2 demonstrates excellent OER performance, attributed to the high specific area composite MnSe/CoSe2, which exposes more active sites and promotes synergistic effects between its components. The overpotential at a current density of 10 mA cm−2 is 360 mV, and the electrocatalyst displays long-term stability of up to 200 hours. This work offers a unique and effective approach to designing high-performance OER electrocatalysts.

Graphical abstract: Formation of Prussian blue analog coronal nanomaterials and their conversion into Mn–Co-mixed selenide for enhanced electrocatalytic oxygen evolution

Supplementary files

Article information

Article type
Research Article
Submitted
30 Mar 2023
Accepted
15 May 2023
First published
16 May 2023

Mater. Chem. Front., 2023,7, 3728-3737

Formation of Prussian blue analog coronal nanomaterials and their conversion into Mn–Co-mixed selenide for enhanced electrocatalytic oxygen evolution

X. Guo, K. Yue, J. Zheng, Z. Yu, Y. Wang, Y. Liu, T. Liu, J. Luo, X. Tao and J. Nai, Mater. Chem. Front., 2023, 7, 3728 DOI: 10.1039/D3QM00323J

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