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Abstract:
High-quality interfacial coupling can effectively boost photogenerated charge separation/transfer efficiency. Herein, we develop a multicomponent photocatalyst, Co6Mo6C2-MoO2-CoNC@ZnIn2S4 (CMN@Z), featuring directional and swift carrier transfer ability through interfacial microenvironment modulation. The distinctive CMN@Z displays a ten-times enhanced photocatalytic H-2-production performance of 4728 mu mol.g(-1).h(-1) than pure ZIS, accompanied by optimized apparent quantum efficiency of 25.06 % at 420 nm. Typically, the well-tuned Schottky barrier readily balances its bifunctionality in rectifying effect and powerful photogenerated electron extraction impetus. Moreover, the gradient work function variation enables the interfacial potential as a robust driving force to expedite charge transfer. Therefore, the resulting cascade charge channel and intimate interfacial contact endow CMN@Z photocatalyst with optimized H-2-production performance by virtue of high-efficiency carrier spatial separation and utilization. Our work deeply explores the role of multiple interfacial in coupling photocatalytic systems, which offers new insight into the rational design of cascade photocatalysts.
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CHEMICAL ENGINEERING JOURNAL
ISSN: 1385-8947
Year: 2022
Volume: 450
1 5 . 1
JCR@2022
1 3 . 4 0 0
JCR@2023
ESI Discipline: ENGINEERING;
ESI HC Threshold:66
JCR Journal Grade:1
CAS Journal Grade:1
Cited Count:
SCOPUS Cited Count: 36
ESI Highly Cited Papers on the List: 0 Unfold All
WanFang Cited Count:
Chinese Cited Count:
30 Days PV: 2
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