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Platinum Cluster/Carbon Quantum Dots Derived Graphene Heterostructured Carbon Nanofibers for Efficient and Durable Solar‐Driven Electrochemical Hydrogen Evolution.

Authors :
Wang, Xiaohan
Zhang, Yuanming
Li, Junzhi
Liu, Guiju
Gao, Mingzhen
Ren, Shihuan
Liu, Bingxu
Zhang, Lixue
Han, Guangting
Yu, Jianyong
Zhao, Haiguang
Rosei, Federico
Source :
Small Methods; Apr2022, Vol. 6 Issue 4, p1-9, 9p
Publication Year :
2022

Abstract

Large scale solar‐driven hydrogen production is a crucial step toward decarbonizing society. However, the solar‐to‐hydrogen (STH) conversion efficiency, long‐term stability, and cost‐effectiveness in hydrogen evolution reaction (HER) still need to be improved. Herein, an efficient approach is demonstrated to produce low‐dimensional Pt/graphene‐carbon nanofibers (CNFs)‐based heterostructures for bias‐free, highly efficient, and durable HER. Carbon dots are used as efficient building blocks for the in situ formation of graphene along the CNFs surface. The presence of graphene enhances the electronic conductivity of CNFs to ≈3013.5 S m−1 and simultaneously supports the uniform Pt clusters growth and efficient electron transport during HER. The electrode with a low Pt loading amount (3.4 µg cm−2) exhibits a remarkable mass activity of HER in both acidic and alkaline media, which is significantly better than that of commercial Pt/C (31 µg cm−2 of Pt loading). In addition, using a luminescent solar concentrator‐coupled solar cell to provide voltage, the bias‐free water splitting system exhibits an STH efficiency of 0.22% upon one‐sun illumination. These results are promising toward using low‐dimensional heterostructured catalysts for future energy storage and conversion applications. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
23669608
Volume :
6
Issue :
4
Database :
Complementary Index
Journal :
Small Methods
Publication Type :
Academic Journal
Accession number :
156379402
Full Text :
https://doi.org/10.1002/smtd.202101470