Issue 31, 2022

Surface phosphorization for the enhanced photoelectrochemical performance of an Fe2O3/Si photocathode

Abstract

Transition metal phosphates (TMPs) are regarded as efficient co-catalysts for photoanodes, but they are rarely applied in hydrogen production reactions. In this work, iron phosphate (FePi), a co-catalyst for hydrogen production, is introduced onto the Fe2O3 surface by facile surface phosphorization under low-temperature conditions. The surface FePi leads to a shift of the onset potential by +201 mV and an increase in the photocurrent density by more than 10 mA cm−2 at 0 VRHE for the Fe2O3/p-Si photocathode in a strong alkaline electrolyte. The role of FePi stems from the smaller transfer resistance, efficient photogenerated carrier separation and electron injection, and preferable H* adsorption energy, as suggested by Kelvin probe force microscopy and density functional theory (DFT) calculation. The surface phosphorization presents a facile and attractive strategy for the treatment of transition metal oxide catalyzed photocathodes for green hydrogen production.

Graphical abstract: Surface phosphorization for the enhanced photoelectrochemical performance of an Fe2O3/Si photocathode

Supplementary files

Article information

Article type
Paper
Submitted
16 May 2022
Accepted
10 Jul 2022
First published
12 Jul 2022

Nanoscale, 2022,14, 11261-11269

Surface phosphorization for the enhanced photoelectrochemical performance of an Fe2O3/Si photocathode

Y. Yuan, B. Zhong, F. Li, H. Wu, J. Liu, H. Yang, L. Zhao, Y. Sun, P. Zhang and L. Gao, Nanoscale, 2022, 14, 11261 DOI: 10.1039/D2NR02693G

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