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通过冰光化学法合成原子级 Pt 电催化剂用于高效析氢反应。

Atomic-Level Pt Electrocatalyst Synthesized via Iced Photochemical Method for Hydrogen Evolution Reaction with High Efficiency.

机构信息

Energy & Catalysis Center, School of Materials Science and Engineering, Beijing Institute of Technology, Beijing, 100081, China.

Shanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai, 201800, China.

出版信息

Small. 2022 Aug;18(33):e2203422. doi: 10.1002/smll.202203422. Epub 2022 Jul 24.

Abstract

In heterogeneous catalysis, metal particle morphology and size can influence markedly the activity. It is of great significance to rationally design and control the synthesis of Pt at the atomic level to demonstrate the structure-activity relationship toward electrocatalysis. Herein, a powerful strategy is reported to synthesize graphene-supported platinum-based electrocatalyst, that is, nanocatalysts with controllable size can be prepared by iced photochemical method, including single atoms (Pt-SA@HG), nanoclusters (Pt-Clu@HG), and nanocrystalline (Pt-Nc@HG). The Pt-SA@HG exhibits unexpected electrocatalytic hydrogen evolution reaction (HER) performances with 13 mV overpotential at 10 mA cm current densities which surpass Pt-Clu@HG and Pt-Nc@HG. The in situ X-ray absorption fine structure spectroscopy (XAFS) and density functional theory (DFT) calculations determine the Pt-C active site is linchpin to the excellent HER performance of Pt-SA@HG. Compared with the traditional Pt-N coordination structure, the pure carbon coordinated Pt-C site is more favorable for HER. This work opens up a new way to adjust the metal particle size and catalytic performance of graphene at a multiscale level.

摘要

在多相催化中,金属颗粒的形态和尺寸可以显著影响其活性。因此,合理设计和控制 Pt 的原子水平合成,以展示其对电催化的结构-活性关系具有重要意义。本文报道了一种合成石墨烯负载的铂基电催化剂的有效策略,即通过冰光化学法制备具有可控尺寸的纳米催化剂,包括单原子(Pt-SA@HG)、纳米团簇(Pt-Clu@HG)和纳米晶(Pt-Nc@HG)。Pt-SA@HG 在 10 mA cm 的电流密度下具有 13 mV 的过电势,表现出出人意料的电催化析氢反应(HER)性能,优于 Pt-Clu@HG 和 Pt-Nc@HG。原位 X 射线吸收精细结构光谱(XAFS)和密度泛函理论(DFT)计算确定了 Pt-C 活性位是 Pt-SA@HG 具有优异 HER 性能的关键。与传统的 Pt-N 配位结构相比,纯碳配位的 Pt-C 位更有利于 HER。这项工作为在多尺度水平上调整石墨烯的金属颗粒尺寸和催化性能开辟了新途径。

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