分解水
电解水
纳米技术
催化作用
可再生能源
表面工程
制氢
材料科学
电催化剂
电解
化学
电化学
工程类
电气工程
物理化学
电解质
光催化
生物化学
电极
作者
Zheng Tan,Xin Ying Kong,Boon‐Junn Ng,Han Sen Soo,Abdul Rahman Mohamed,Siang‐Piao Chai
出处
期刊:ACS omega
[American Chemical Society]
日期:2023-01-05
卷期号:8 (2): 1851-1863
被引量:36
标识
DOI:10.1021/acsomega.2c06524
摘要
Switching to renewable, carbon-neutral sources of energy is urgent and critical for climate change mitigation. Despite how hydrogen production by electrolyzing water can enable renewable energy storage, current technologies unfortunately require rare and expensive platinum group metal electrocatalysts, which limit their economic viability. Transition metal dichalcogenides (TMDs) are low-cost, earth-abundant materials that possess the potential to replace platinum as the hydrogen evolution catalyst for water electrolysis, but so far, pristine TMDs are plagued by poor catalytic performances. Defect engineering is an attractive approach to enhance the catalytic efficiency of TMDs and is not subjected to the limitations of other approaches like phase engineering and surface structure engineering. In this minireview, we discuss the recent progress made in defect-engineered TMDs as efficient, robust, and low-cost catalysts for water splitting. The roles of chalcogen atomic defects in engineering TMDs for improvements to the hydrogen evolution reaction (HER) are summarized. Finally, we highlight our perspectives on the challenges and opportunities of defect engineering in TMDs for electrocatalytic water splitting. We hope to provide inspirations for designing the state-of-the-art catalysts for future breakthroughs in the electrocatalytic HER.
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