Li Zhao, Lu Xinhua, Teng Jingrui, Zhou Yingmei, Zhuang Wenchang
School of Materials and Chemical Engineering, Xuzhou University of Technology, Xuzhou 221018, PR China.
Nanoscale. 2021 Jul 8;13(26):11314-11324. doi: 10.1039/d1nr02019f.
In response to the shortage of fossil fuels, efficient electrochemical energy conversion devices are attracting increasing attention, while the limited electrochemical performance and high cost of noble metal-based electrode materials remain a daunting challenge. The electrocatalytic performance of electrode materials is closely bound with their intrinsic electronic/ionic states and crystal structures. Apart from the nanoscale design and conductive composite strategies, heteroatom doping, particularly for nonmetal doping (e.g., hydrogen, boron, sulfur, selenium, phosphorus, and tellurium), is also another effective strategy to greatly promote the intrinsic activity of the electrode materials by tuning their atomic structures. From the perspective of electrocatalytic reactions, the effective atomic structure regulation could induce additional active sites, create rich defects, and optimize the adsorption capability, thereby contributing to the promotion of the electrocatalytic performance of noble metal-based electrocatalysts. Encouraged by the great progress achieved in this field, we have reviewed recent advancements in nonmetal doping for electrocatalytic energy conversion. Specifically, the doping effect on the atomic structure and intrinsic electronic/ionic state is also systematically illustrated and the relationship with the electrocatalytic performance is also investigated. It is believed that this review will provide guidance for the development of more efficient electrocatalysts.
为应对化石燃料短缺问题,高效电化学能量转换装置正受到越来越多的关注,而基于贵金属的电极材料有限的电化学性能和高成本仍是一项艰巨挑战。电极材料的电催化性能与其固有电子/离子状态及晶体结构密切相关。除了纳米尺度设计和导电复合策略外,杂原子掺杂,特别是非金属掺杂(如氢、硼、硫、硒、磷和碲),也是通过调整原子结构来大幅提升电极材料固有活性的另一有效策略。从电催化反应的角度来看,有效的原子结构调控可诱导额外的活性位点、产生丰富的缺陷并优化吸附能力,从而有助于提升基于贵金属的电催化剂的电催化性能。受该领域取得的巨大进展鼓舞,我们综述了电催化能量转换中非金属掺杂的近期进展。具体而言,还系统阐述了掺杂对原子结构和固有电子/离子状态的影响,并研究了其与电催化性能的关系。相信这篇综述将为开发更高效的电催化剂提供指导。