TY - JOUR
T1 - Metal-organic framework-derived ZnxCd1-xS/ZnxCd1-x-MOF heterostructures promoting charge separation for photocatalytic hydrogen evolution
AU - Ma, Siqing
AU - Wang, Xin
AU - Wan, Kang
AU - Liu, Boyan
AU - Yang, Yilong
AU - Wang, Songcan
N1 - Publisher Copyright:
© 2024 Elsevier B.V.
PY - 2025/2/19
Y1 - 2025/2/19
N2 - Severe charge recombination is a bottleneck for efficient photocatalytic hydrogen production. Herein, ZnxCd1-xS/ZnxCd1-x-MOF heterostructures with enhanced photocatalytic hydrogen evolution activity are synthesized by a two-step solvothermal process based on a metal–organic framework (MOF) template method. By carefully tuning the composition and the reaction temperatures, the obtained Zn0.2Cd0.8S/Zn0.2Cd0.8-MOF heterojunction can continuously generate hydrogen for 25 h, with an optimized hydrogen production rate of 13.3 mmol g-1h−1. An impressive apparent quantum yield of 24.1 % at 420 nm monochromatic light is achieved. Zn0.2Cd0.8S nanoparticles are embedded in the Zn0.2Cd0.8-MOF skeleton during the solvothermal process, resulting in excellent distribution and interfacial contact in the obtained heterojunction. Such a heterostructure not only promotes charge separation, but also alleviates photocorrosion. The proof-of-concept demonstrated in this work provides an alternative way for the design of high-performance metal sulfide-based photocatalysts for efficient solar hydrogen production.
AB - Severe charge recombination is a bottleneck for efficient photocatalytic hydrogen production. Herein, ZnxCd1-xS/ZnxCd1-x-MOF heterostructures with enhanced photocatalytic hydrogen evolution activity are synthesized by a two-step solvothermal process based on a metal–organic framework (MOF) template method. By carefully tuning the composition and the reaction temperatures, the obtained Zn0.2Cd0.8S/Zn0.2Cd0.8-MOF heterojunction can continuously generate hydrogen for 25 h, with an optimized hydrogen production rate of 13.3 mmol g-1h−1. An impressive apparent quantum yield of 24.1 % at 420 nm monochromatic light is achieved. Zn0.2Cd0.8S nanoparticles are embedded in the Zn0.2Cd0.8-MOF skeleton during the solvothermal process, resulting in excellent distribution and interfacial contact in the obtained heterojunction. Such a heterostructure not only promotes charge separation, but also alleviates photocorrosion. The proof-of-concept demonstrated in this work provides an alternative way for the design of high-performance metal sulfide-based photocatalysts for efficient solar hydrogen production.
KW - Charge separation
KW - Heterojunctions
KW - Metal–organic frameworks
KW - Photocatalytic hydrogen evolution
KW - ZnCdS solid solutions
UR - http://www.scopus.com/inward/record.url?scp=85200466690&partnerID=8YFLogxK
U2 - 10.1016/j.seppur.2024.129089
DO - 10.1016/j.seppur.2024.129089
M3 - 文章
AN - SCOPUS:85200466690
SN - 1383-5866
VL - 354
JO - Separation and Purification Technology
JF - Separation and Purification Technology
M1 - 129089
ER -