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通过表面还原法在碳片上制备用于酸性析氢的原子分散铂

surface reduction for accessing atomically dispersed platinum on carbon sheets for acidic hydrogen evolution.

作者信息

Quan Weiwei, Ruan Xinglin, Lin Yingbin, Luo Jiewei, Huang Yiyin

机构信息

Fujian Provincial Key Laboratory of Quantum Manipulation and New Energy Materials, College of Physics and Energy, Fujian Normal University, Fuzhou, Fujian, 350117, China.

Fujian Provincial Engineering Technology Research Center of Solar Energy Conversion and Energy Storage, Fuzhou,350117, China.

出版信息

Nanoscale. 2021 Nov 18;13(44):18677-18683. doi: 10.1039/d1nr05199g.

Abstract

Exploring the simple yet well-controlled synthesis of atomically dispersed Pt catalysts is a crucial endeavour for harvesting clean hydrogen the kinetics-favoured acidic electrochemical water splitting technique. Here we employed the use of defective carbon sheets by KOH etching as a substrate for the surface reduction of Pt(IV) ions to prepare atomically dispersed Pt. Physical and electrochemical characterizations reveal a strong interaction between the carbon substrate and Pt species, providing the basis for the surface reduction. The atomically dispersed Pt electrocatalyst exhibited high HER performance in a sulfuric acid electrolyte, with an overpotential as low as 55 mV at a current density of 100 mA cm, and better catalytic durability compared to the commercial Pt/C. The mechanism study revealed that the full utilization of atomically dispersed Pt and the optimized catalyst surface may enhance the recombination of adsorbed *H the Volmer-Tafel mechanism to produce H at a high efficiency. In the light of high activity, durability, and low cost, the atomically dispersed Pt material is promising for acidic HER application.

摘要

探索简单且可控的原子分散铂催化剂的合成方法,对于采用动力学有利的酸性电化学水分解技术获取清洁氢气而言是一项至关重要的工作。在此,我们采用通过氢氧化钾蚀刻制备的缺陷碳片作为底物,用于将Pt(IV)离子进行表面还原以制备原子分散的铂。物理和电化学表征揭示了碳底物与铂物种之间的强相互作用,为表面还原提供了基础。原子分散的铂电催化剂在硫酸电解质中表现出高析氢性能,在电流密度为100 mA cm时过电位低至55 mV,并且与商业Pt/C相比具有更好的催化耐久性。机理研究表明,原子分散铂的充分利用以及优化的催化剂表面可能会增强吸附的*H的复合——通过Volmer-Tafel机理高效产生氢气。鉴于其高活性、耐久性和低成本,原子分散的铂材料在酸性析氢应用方面具有前景。

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