化学
催化作用
氮气
MXenes公司
纳米技术
电催化剂
碳纤维
能量转换
过渡金属
电化学
金属
材料科学
物理化学
有机化学
电极
物理
复合材料
复合数
热力学
作者
Sundaram Chandrasekaran,Chenle Zhang,Yiqing Shu,Huide Wang,Sanming Chen,Thomas Nesakumar Jebakumar Immanuel Edison,Yongping Liu,Namachivayam Karthik,R.D.K. Misra,Libo Deng,Peng Yin,Yanqi Ge,Omar A. Al‐Hartomy,Ahmed A. Al-Ghamdi,S. Wageh,Peixin Zhang,Chris Bowen,Zhang Han
标识
DOI:10.1016/j.ccr.2021.214209
摘要
The use of a wide range of methods for incorporating nitrogen atoms on robust catalysts has given rise to fundamental advances in the field of energy conversion and storage. Recently, nitrogen incorporation has proven to be able to fine-tune the electron densities of exposed active sites to create high-performance electrocatalysts. The preservation of a strong interface between the local atomic coordination of nitrogen atoms on bare carbon, single metal atoms, transition metal oxides, metal chalcogenides, and MXenes during synthesis plays an important role in producing an efficient electrocatalysts. In addition, the ability of nitrogen atoms to bind with carbon or metal atoms can be influenced by processing conditions. In this regard, this review is the first comprehensive overview of the range of synthetic strategies to form nitrogen incorporated catalysts and assess their chemical, structural, physical electronic property modification and their influence on electrocatalytic ORR, OER, and HER performance. This review will describe how specific strategies have been utilized to realise effective electrocatalytic systems, including the energy conversion of nitrogen incorporated catalysts, structural coordination, and material optimization. Finally, the main challenges to be considered in future investigations in order to initiate new research efforts in this promising research area are discussed.
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