TY - JOUR
T1 - Local environment regulation of transition metal dichalcogenide-based single-atom catalysts
AU - Li, Ming Hui
AU - Li, Jing
AU - Zheng, Xiao Yu
AU - Zhou, Yao
N1 - Publisher Copyright:
© Youke Publishing Co.,Ltd 2024.
PY - 2024/9
Y1 - 2024/9
N2 - Single-atom catalysts have risen significant attention in the realm of green electrocatalytic energy conversion to address energy and environmental sustainability challenges. Transition metal dichalcogenide (TMD)-based single-atom catalysts are considered highly effective in electrocatalysis due to the TMDs' notable specific surface area, tunable elemental species and efficient utilization of single atoms. In order to enhance electrocatalytic performance, it is imperative to elaborately engineer the local environment surrounding the active sites of single atoms within TMDs. In this review, we initially explore the effects of synthesis methods on single-atom active sites and the influence of loading of single atoms on catalytic performance for TMDs. The modulation strategies of the local environment surrounding single-atom sites in TMDs are elaborated, including substitution engineering, surface adsorption, vacancies, spatial confinement and dual-atom site strategies. For each modulation strategy, the effects of diverse local environments on various electrocatalytic applications are presented, such as the oxygen evolution reaction, oxygen reduction reaction, nitrogen reduction reaction, CO2 reduction reaction and CO oxidation. Ultimately, this study presents a comprehensive overview of the challenges encountered and the potential directions for the advancement of single-atom catalysts based on TMDs in the realm of electrocatalysis. Graphical Abstract: (Figure presented.)
AB - Single-atom catalysts have risen significant attention in the realm of green electrocatalytic energy conversion to address energy and environmental sustainability challenges. Transition metal dichalcogenide (TMD)-based single-atom catalysts are considered highly effective in electrocatalysis due to the TMDs' notable specific surface area, tunable elemental species and efficient utilization of single atoms. In order to enhance electrocatalytic performance, it is imperative to elaborately engineer the local environment surrounding the active sites of single atoms within TMDs. In this review, we initially explore the effects of synthesis methods on single-atom active sites and the influence of loading of single atoms on catalytic performance for TMDs. The modulation strategies of the local environment surrounding single-atom sites in TMDs are elaborated, including substitution engineering, surface adsorption, vacancies, spatial confinement and dual-atom site strategies. For each modulation strategy, the effects of diverse local environments on various electrocatalytic applications are presented, such as the oxygen evolution reaction, oxygen reduction reaction, nitrogen reduction reaction, CO2 reduction reaction and CO oxidation. Ultimately, this study presents a comprehensive overview of the challenges encountered and the potential directions for the advancement of single-atom catalysts based on TMDs in the realm of electrocatalysis. Graphical Abstract: (Figure presented.)
KW - Electrocatalysis
KW - Local environment
KW - Single-atom catalysts
KW - Transition metal dichalcogenide
UR - http://www.scopus.com/inward/record.url?scp=85197251934&partnerID=8YFLogxK
U2 - 10.1007/s12598-024-02679-9
DO - 10.1007/s12598-024-02679-9
M3 - Short survey
AN - SCOPUS:85197251934
SN - 1001-0521
VL - 43
SP - 4019
EP - 4037
JO - Rare Metals
JF - Rare Metals
IS - 9
ER -