Interfacial component coupling effects towards precise heterostructure design for efficient electrocatalytic water splitting

异质结 材料科学 分解水 联轴节(管道) 组分(热力学) 纳米技术 化学物理 光电子学 催化作用 复合材料 化学 光催化 热力学 物理 生物化学
作者
Jianwen Liu,Xiaoqiang Yang,Fengzhan Si,Bin Zhao,Xiuan Xi,Lei Wang,Jiujun Zhang,Xian‐Zhu Fu,Jing‐Li Luo
出处
期刊:Nano Energy [Elsevier]
卷期号:103: 107753-107753 被引量:76
标识
DOI:10.1016/j.nanoen.2022.107753
摘要

Electrocatalytic water splitting is an appealing method for generating renewable hydrogen. In acidic media, noble metals are commonly used as electrocatalysts, whereas in alkaline media, non-noble metals are used. However, due to the high cost and rarity of noble metals, as well as the low acitivity and stability of non-noble metals, industrial uses are severely constrained. Heterostructures are a possible alternative to costly electrocatalysts because of their tunable properties. The origin of activity and stability of heterostructures lies in the coupling between their constituent components. Thus, the establishment of interfacial component coupling effects such as the Mott-Schottky effect, the Strong-Metal-Support-Interaction effect, the support-stabilizing effect, and the synergistic effect is a promising technique for enhancing activity and stability. However, a lack of the generation rules for the interfacial coupling effects impedes their widespread application for the rational design. This review summarizes the progress made towards heterostructure design from the interfacial component coupling effects with respect to the various components. The challenges and future prospective have also been presented for the heterostructure electrocatalyst design. The findings reported in this review pave a way for the heterostructure electrocatalyst design for water splitting as well as other electrocatalytic processes such as oxygen reduction, CO 2 reduction, nitrogen reduction reactions, etc. ● The Mott-Schottky effect, Strong-Metal-Support-Interaction effect, support-stabilizing effect, synergistic effect etc. interfacial component coupling effects are summarized for heterostructures. ● The generation rules of interfacial component coupling effects of heterostructures are comprehensively proposed. ● A theoretical basis is provided for constructing the efficient heterostructured catalysts by making use of the interfacial component coupling effects. ● The prerequisites for various interfacial component coupling effects are highlighted as well as the typically utilized component materials for construction. ● New insights and perspectives have been provided to facilitate the heterostructure design for the applications in energy conversion and storage fields.
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