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在 CoTe 纳米棒表面上双重整合氧和硫可引发增强的氧析出反应。

Dual Integrating Oxygen and Sulphur on Surface of CoTe Nanorods Triggers Enhanced Oxygen Evolution Reaction.

机构信息

College of Chemical Engineering, Zhejiang University of Technology, Hangzhou, 310032, P. R. China.

School of Chemistry, Physics and Mechanical Engineering, Queensland University of Technology, Brisbane, QLD, 4000, Australia.

出版信息

Adv Sci (Weinh). 2023 Mar;10(9):e2206204. doi: 10.1002/advs.202206204. Epub 2023 Jan 26.

Abstract

The bottleneck of large-scale implementation of electrocatalytic water-splitting technology lies in lacking inexpensive, efficient, and durable catalysts to accelerate the sluggish oxygen evolution reaction kinetics. Owing to more metallic features, transition metal telluride (TMT) with good electronic conductivity holds promising potential as an ideal type of electrocatalysts for oxygen evolution reaction (OER), whereas most TMTs reported up to now still show unsatisfactory OER performance that is far below corresponding sulfide and selenide counterparts. Here, the activation and stabilization of cobalt telluride (CoTe) nanoarrays toward OER through dual integration of sulfur (S) doping and surface oxidization is reported. The as-synthesized CoO@S-CoTe catalyst exhibits a low overpotential of only 246 mV at 10 mA cm and a long-term stability of more than 36 h, outperforming commercial RuO and other reported telluride-based OER catalysts. The combined experimental and theoretical results reveal that the enhanced OER performance stems from increased active sites exposure, improved charge transfer ability, and optimized electronic state. This work will provide a valuable guidance to release the catalytic potential of telluride-based OER catalysts via interface modulating engineering.

摘要

电催化水分解技术大规模应用的瓶颈在于缺乏廉价、高效、耐用的催化剂来加速缓慢的析氧反应动力学。由于具有更多的金属特性,具有良好导电性的过渡金属碲化物(TMT)作为析氧反应(OER)的理想电催化剂具有很大的潜力,但迄今为止报道的大多数 TMT 仍然表现出不理想的 OER 性能,远低于相应的硫化物和硒化物。在这里,通过硫(S)掺杂和表面氧化的双重集成,报道了钴碲化物(CoTe)纳米阵列在 OER 中的活化和稳定化。所合成的 CoO@S-CoTe 催化剂在 10 mA cm 时仅表现出 246 mV 的低过电位,并且具有超过 36 h 的长期稳定性,优于商业 RuO 和其他报道的基于碲化物的 OER 催化剂。结合实验和理论结果揭示了增强的 OER 性能源于增加的活性位点暴露、提高的电荷转移能力和优化的电子状态。这项工作将通过界面调制工程为释放基于碲化物的 OER 催化剂的催化潜力提供有价值的指导。

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