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氟掺杂碳载体通过打破标度关系实现超快速氧还原动力学。

Fluorine-Doped Carbon Support Enables Superfast Oxygen Reduction Kinetics by Breaking the Scaling Relationship.

作者信息

Liang Jinhui, Liang Lecheng, Zeng Binwen, Feng Binbin, Du Li, Qiu Xiaoyi, Wang Yian, Song Huiyu, Liao Shijun, Shao Minhua, Cui Zhiming

机构信息

Guangdong Provincial Key Laboratory of Fuel Cell Technology, School of Chemistry and Chemical Engineering, South China University of Technology, 510641, Guangzhou, China.

Department of Chemical and Biological Engineering and Energy Institute, Chinese National Engineering Research Center for Control & Treatment of Heavy Metal Pollution, The Hong Kong University of Science and Technology, 999077, Hong Kong, China.

出版信息

Angew Chem Int Ed Engl. 2024 Nov 18;63(47):e202412825. doi: 10.1002/anie.202412825. Epub 2024 Oct 14.

Abstract

It is well-established that Pt-based catalysts suffer from the unfavorable linear scaling relationship (LSR) between *OOH and *OH (ΔG(*OOH)=ΔG(*OH)+3.2±0.2 eV) for the oxygen reduction reaction (ORR), resulting in a great challenge to significantly reduced ORR overpotentials. Herein, we propose a universal and feasible strategy of fluorine-doped carbon supports, which optimize interfacial microenvironment of Pt-based catalysts and thus significantly enhance their reactive kinetics. The introduction of C-F bonds not only weakens the *OH binding energy, but also stabilizes the *OOH intermediate, resulting in a break of LSR. Furthermore, fluorine-doped carbon constructs a local super-hydrophobic interface that facilitates the diffusion of HO and the mass transfer of O. Electrochemical tests show that the F-doped carbon-supported Pt catalysts exhibit over 2-fold higher mass activities than those without F modification. More importantly, those catalysts also demonstrate excellent stability in both rotating disk electrode (RDE) and membrane electrode assembly (MEA) tests. This study not only validates the feasibility of tuning the electrocatalytic microenvironment to improve mass transport and to break the scaling relationship, but also provides a universal catalyst design paradigm for other gas-involving electrocatalytic reactions.

摘要

众所周知,基于铂的催化剂在氧还原反应(ORR)中存在OOH和OH之间不利的线性标度关系(LSR)(ΔG(OOH)=ΔG(OH)+3.2±0.2 eV),这给显著降低ORR过电位带来了巨大挑战。在此,我们提出了一种通用且可行的氟掺杂碳载体策略,该策略优化了基于铂的催化剂的界面微环境,从而显著提高其反应动力学。C-F键的引入不仅削弱了OH的结合能,还稳定了OOH中间体,导致LSR的打破。此外,氟掺杂碳构建了一个局部超疏水界面,促进了HO的扩散和O的传质。电化学测试表明,氟掺杂碳负载的铂催化剂的质量活性比未进行氟改性的催化剂高出两倍以上。更重要的是,这些催化剂在旋转圆盘电极(RDE)和膜电极组件(MEA)测试中也表现出优异的稳定性。这项研究不仅验证了调节电催化微环境以改善传质和打破标度关系的可行性,还为其他涉及气体的电催化反应提供了一种通用的催化剂设计范例。

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