过渡金属
电催化剂
吸附
材料科学
纤锌矿晶体结构
催化作用
纳米技术
原子轨道
化学物理
化学
电化学
化学工程
物理化学
冶金
电子
电极
有机化学
物理
工程类
量子力学
锌
作者
Longfei Wu,Jan P. Hofmann
标识
DOI:10.1016/j.coelec.2022.101010
摘要
High-entropy transition metal chalcogenides (HE-TMCs) are advantageous in electrocatalytic applications compared to other entropy-stabilized systems owing to the greater orbital extension and energetic match of p-orbitals in chalcogenides with d-orbitals of the transition metals providing additional space to tailor their electronic structure. The high-configurational entropy of HE-TMCs leads to stabilization of cubic rock salt, wurtzite-type and hexagonally packed 2D structures. Due to the multi-element nature of HE-TMCs, the synergy among different elements results in tunable d- and p-band positions. As a consequence, the adsorption energies of electrocatalytic reaction intermediates can be tailored to enhance catalytic performance in water splitting and CO 2 reduction. Furthermore, the entropy-stabilized disordered microstructural state of the material endows HE-TMCs with improved corrosion resistance. Despite recent advances in HE-TMC electrocatalysis, challenges such as identification and synthesis of efficient HE-TMCs as well as the identification of catalytically active sites and reaction mechanisms on HE-TMCs remain to be investigated. • Different crystal structures of high-entropy transition metal chalcogenides (HE-TMCs) are discussed. • Interplay between p-band and d-band positions determines electrocatalytic properties of HE-TMCs. • Use of HE-TMCs in water splitting and CO 2 reduction with promising performance. • High-configurational entropy of HE-TMCs stabilizes of bulk structures in harsh electrocatalytic environments.
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