Jingyu Wang, Zhenxi Chen, Jiaqi Xiang, Yifan Jiang, Kai Li, Chao Ma, Limiao Chen, Shanyong Chen* and You-Nian Liu,
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The experimental results and theoretical calculations confirm that the MoNiCuCoIn core activates the outer carbon layer via interfacial electronic penetration, which generates optimal adsorption of an oxygen-involved intermediate and thus high 2e<sup>–</sup> ORR activity. The robustness of the catalyst structure of MoNiCuCoIn@CN ensures remarkable 2e<sup>–</sup> ORR stability in acid. Therefore, the catalyst delivers a record-high acidic performance with a H<sub>2</sub>O<sub>2</sub> Faradaic efficiency (FE<sub>H2O2</sub>) of >90% from −50 to −300 mA cm<sup>–2</sup> and a sustained FE<sub>H2O</sub><sub>2</sub> of up to 120 h at a high current density of −250 mA cm<sup>–2</sup>. This work highlights the multimetal–carbon interface for addressing the activity–stability trade-off in harsh electrocatalysis, providing fundamental insights for the design of a next-generation catalyst.</p>","PeriodicalId":62,"journal":{"name":"The Journal of Physical Chemistry Letters","volume":"16 35","pages":"9041–9051"},"PeriodicalIF":4.6000,"publicationDate":"2025-08-25","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"High-Entropy Alloy Electron-Penetrated Nitrogen-Doped Carbon Interface Breaking Activity–Stability Trade-off in Acidic Oxygen Reduction to H2O2\",\"authors\":\"Jingyu Wang, Zhenxi Chen, Jiaqi Xiang, Yifan Jiang, Kai Li, Chao Ma, Limiao Chen, Shanyong Chen* and You-Nian Liu, \",\"doi\":\"10.1021/acs.jpclett.5c02060\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >The electrocatalytic two-electron oxygen reduction reaction (2e<sup>–</sup> ORR) has emerged as an environmentally friendly approach for on-demand H<sub>2</sub>O<sub>2</sub> production. 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引用次数: 0
摘要
电催化双电子氧还原反应(2e - ORR)已成为一种环保的按需生产H2O2的方法。在酸性H2O2电合成中,活性界面与含氧中间体和氧化酸反应,导致活性-稳定性权衡。在此,我们提出构建一个高熵合金电子穿透和稳定的氮掺杂碳界面用于酸性电合成H2O2。作为概念验证,开发了一种典型的催化剂,将MoNiCuCoIn高熵合金包裹在氮掺杂碳的少数层中(MoNiCuCoIn@CN)。实验结果和理论计算证实,MoNiCuCoIn核通过界面电子渗透激活外碳层,从而产生最佳的含氧中间体吸附,从而获得较高的2e - ORR活性。MoNiCuCoIn@CN催化剂结构的稳健性保证了其在酸性环境中具有显著的2e - ORR稳定性。因此,该催化剂提供了创纪录的高酸性性能,在−50至−300 mA cm-2范围内,H2O2法拉第效率(FEH2O2)达到90%,在−250 mA cm-2的高电流密度下,FEH2O2的持续时间长达120小时。这项工作强调了多金属-碳界面用于解决苛刻电催化中活性-稳定性权衡的问题,为下一代催化剂的设计提供了基本见解。
High-Entropy Alloy Electron-Penetrated Nitrogen-Doped Carbon Interface Breaking Activity–Stability Trade-off in Acidic Oxygen Reduction to H2O2
The electrocatalytic two-electron oxygen reduction reaction (2e– ORR) has emerged as an environmentally friendly approach for on-demand H2O2 production. In acidic H2O2 electrosynthesis, the active interfaces react with both oxygen-containing intermediates and oxidative acid, resulting in an activity–stability trade-off. Herein, we propose to construct a high-entropy alloy electron-penetrated and stable nitrogen-doped carbon interface for acidic electrosynthesis of H2O2. As a proof of concept, a typical catalyst with the MoNiCuCoIn high-entropy alloy encapsulated in few-layer nitrogen-doped carbon (MoNiCuCoIn@CN) is developed. The experimental results and theoretical calculations confirm that the MoNiCuCoIn core activates the outer carbon layer via interfacial electronic penetration, which generates optimal adsorption of an oxygen-involved intermediate and thus high 2e– ORR activity. The robustness of the catalyst structure of MoNiCuCoIn@CN ensures remarkable 2e– ORR stability in acid. Therefore, the catalyst delivers a record-high acidic performance with a H2O2 Faradaic efficiency (FEH2O2) of >90% from −50 to −300 mA cm–2 and a sustained FEH2O2 of up to 120 h at a high current density of −250 mA cm–2. This work highlights the multimetal–carbon interface for addressing the activity–stability trade-off in harsh electrocatalysis, providing fundamental insights for the design of a next-generation catalyst.
期刊介绍:
The Journal of Physical Chemistry (JPC) Letters is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, chemical physicists, physicists, material scientists, and engineers. An important criterion for acceptance is that the paper reports a significant scientific advance and/or physical insight such that rapid publication is essential. Two issues of JPC Letters are published each month.