Efficient and sustainable hydrogen evolution reaction: enhanced photoelectrochemical performance of ReO3-incorporated Cu2Te catalysts

Abstract

In the pursuit of clean hydrogen production, the photoelectrochemical hydrogen evolution reaction (HER) plays a pivotal role. The development of highly efficient, durable catalysts is vital for the industrialization of water-splitting technology. One promising strategy is the fabrication of self-supported catalysts, which are known for their exceptional activity and durability. In this study, we report the synthesis of copper telluride (Cu2Te) incorporated with rhenium oxide (ReO3) via a CVD-assisted route. The electrochemical and photoelectrochemical HER performance analyses reveal that the ReO3–Cu2Te composite exhibits excellent HER performance with a very low overpotential of −0.026 V at −10 mA cm−2 in the presence of light. This exceptional performance positions the ReO3–Cu2Te composite as a promising candidate to replace the expensive state-of-the-art platinum catalyst.

Graphical abstract: Efficient and sustainable hydrogen evolution reaction: enhanced photoelectrochemical performance of ReO3-incorporated Cu2Te catalysts

Supplementary files

Article information

Article type
Paper
Submitted
12 Jan 2024
Accepted
03 Apr 2024
First published
05 Apr 2024
This article is Open Access
Creative Commons BY-NC license

Energy Adv., 2024, Advance Article

Efficient and sustainable hydrogen evolution reaction: enhanced photoelectrochemical performance of ReO3-incorporated Cu2Te catalysts

A. Vijayan and N. Sandhyarani, Energy Adv., 2024, Advance Article , DOI: 10.1039/D4YA00023D

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