Chinese Journal of Catalysis ›› 2026, Vol. 90: 184-196.DOI: 10.1016/S1872-2067(26)65183-2
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Xiao Zhanga,b,1, Yuxin Wangb,1, Shuhan Sunb, Xianqiang Xiongb,c,*(
), Qin Lia, Kangle Lva,*(
)
Received:2026-01-27
Accepted:2026-04-01
Online:2026-11-18
Published:2026-11-19
About author:First author contact:1 Contributed equally to this work.
Supported by:Xiao Zhang, Yuxin Wang, Shuhan Sun, Xianqiang Xiong, Qin Li, Kangle Lv. Charge-photothermal-catalysis synergy in ZnCdS/Co2SnO4 for enhanced photocatalytic hydrogen evolution and benzyl alcohol oxidation[J]. Chinese Journal of Catalysis, 2026, 90: 184-196.
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URL: https://www.cjcatal.com/EN/10.1016/S1872-2067(26)65183-2
Fig. 1. (a) Schematic of heterojunction preparation procedure. (b) XRD patterns of ZCS, CSO, and ZCS/CSO-x% heterojunction. TEM (c) and HRTEM (d) images of ZCS/CSO-7%. (e) Elemental mapping images of ZCS/CSO-7% composite. (f) N2 physisorption isotherms of ZCS, CSO, and ZCS/CSO-7% heterojunction.
Fig. 2. (a) Time-course profile of H2 production. (b) Production rate of H2 and BAD along with selectivity for BAD. (c) Probing the reaction pathway via in-situ DRIFTS during BA oxidation. (d) AQE across different wavelengths. (e) Benchmarking H2 evolution activity against reported ZCS composites (data in Table S2). (f) Testing the photocatalytic stability through recycling runs.
Fig. 3. Calculated work functions for CSO (a) and ZCS (b). Deduced energy band alignment (c) and charge density difference (d) for the ZCS/CSO-7% composite. High-resolution XPS and in-situ irradiated high-resolution XPS spectra of CSO, ZCS, and ZCS/CSO-7% samples: Cd 3d (e) and Sn 3d (f). 2D TA spectra (g,h) and kinetics decay traces (i) probed at 550 nm for ZCS and ZCS/CSO-7%, respectively.
Fig. 4. (a) Photocatalytic H2 generation curves at various temperatures. (b) Infrared thermal images comparing ZCS and the ZCS/CSO-7% composite under visible (Vis) and full-spectrum (Vis-NIR) irradiation during HER testing. (c) Recording the temperature evolution and distribution through thermal mapping under different light sources (Vis and Vis-NIR).
Fig. 5. (a) Presenting the DFT-calculated hydrogen adsorption free energy profile. (b) Transient photocurrent response curves of ZCS, CSO, and ZCS/CSO-7%. (c) Measuring surface wettability via contact angles. (d) EIS spectra. (e) Temperature dependence of H2 evolution rates and comparison of apparent activation energies for ZCS and ZCS/CSO-7%. (f) Illustrating the proposed synergistic photocatalytic mechanism.
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