Badreldin Ahmed, Abusrafa Aya E, Abdel-Wahab Ahmed
Chemical Engineering Program, Texas A&M University at Qatar, P.O. Box, 23874, Doha, Qatar.
ChemSusChem. 2021 Jan 7;14(1):10-32. doi: 10.1002/cssc.202002002. Epub 2020 Dec 4.
An apparent increased interest has been recently devoted towards the previously untrodden path for anionic point defect engineering of electrocatalytic surfaces. The role of vacancy engineering in improving photo- and electrocatalytic activities of transition metal oxides (TMOs) has been widely reported. In particular, oxygen vacancy modulation on electrocatalysts of cobalt-based TMOs has seen a fresh spike of research work due to the substantial improvements they have shown towards oxygen evolution reaction (OER) and hydrogen evolution reaction (HER). Oxygen vacancy engineering is an effective scheme to quintessentially tune the electronic structure and charge transport, generate secondary active surface phases, and modify the surface adsorption/desorption behavior of reaction intermediates during water splitting. Based on contemporary efforts for inducing oxygen vacancies in a variety of cobalt oxide types, this work addresses facile and environmentally benign synthesis strategies, characterization techniques, and detailed insight into the intrinsic mechanistic modulation of electrocatalysts. It is our foresight that appropriate utilization of the principles discussed herein will aid researchers in rationally designing novel materials that can outperform noble metal-based electrocatalysts. Ultimately, future electrocatalysis implementation for selective seawater splitting is believed to depend on regulating the surface chemistry of active and stable TMOs.
最近,人们明显对电催化表面阴离子点缺陷工程这一以前未涉足的领域产生了越来越浓厚的兴趣。空位工程在改善过渡金属氧化物(TMOs)的光催化和电催化活性方面的作用已被广泛报道。特别是,钴基TMOs电催化剂上的氧空位调制引发了新一轮的研究热潮,因为它们在析氧反应(OER)和析氢反应(HER)方面表现出了显著的改善。氧空位工程是一种有效的方案,可从本质上调节电子结构和电荷传输,生成二次活性表面相,并改变水分解过程中反应中间体的表面吸附/解吸行为。基于目前在各种钴氧化物类型中诱导氧空位的努力,这项工作探讨了简便且环境友好的合成策略、表征技术,以及对电催化剂内在机理调制的详细见解。我们有先见之明的是,合理利用本文讨论的原理将有助于研究人员合理设计出性能优于贵金属基电催化剂的新型材料。最终,人们认为未来用于选择性海水分解的电催化实施将取决于调节活性和稳定的TMOs的表面化学性质。