Chinese Journal of Catalysis ›› 2026, Vol. 80: 113-122.DOI: 10.1016/S1872-2067(25)64883-2
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Haopeng Jianga, Jinhe Lia, Xiaohui Yua,*(
), Huilong Dongb, Weikang Wanga,c, Qinqin Liua,*(
)
Received:2025-06-05
Accepted:2025-07-06
Online:2026-01-18
Published:2026-01-05
Contact:
Xiaohui Yu, Qinqin Liu
Supported by:Haopeng Jiang, Jinhe Li, Xiaohui Yu, Huilong Dong, Weikang Wang, Qinqin Liu. Interface engineering of covalent β-ketoenamine-bridged S-scheme heterojunction for synergistic solar-powered CO2-to-CO conversion paired with selective alcohol oxidation[J]. Chinese Journal of Catalysis, 2026, 80: 113-122.
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URL: https://www.cjcatal.com/EN/10.1016/S1872-2067(25)64883-2
Fig. 1. (a) Synthesis of the Zr-BTB-COF-3 composite. TEM images of Zr-BTB-NH2 (b) and Zr-BTB-COF-3 (c). (d,e) HAADF-STEM images of Zr-BTB-COF-3. XRD patterns (f), FT-IR spectra (g), UV-vis spectra (h) of TpTt-COF, Zr-BTB-NH2 and Zr-BTB-COF composites.
Fig. 2. The bandgaps of Zr-BTB-NH2 (a) and TpTt-COF (b). M-S plots of Zr-BTB-NH2 (c) and TpTt-COF (d). (e) Band structure of Zr-BTB-NH2 and TpTt-COF. (f) XPS full spectra of TpTt-COF, Zr-BTB-NH2 and Zr-BTB-COF-3.
Fig. 3. The XPS spectra of Zr 3d (a), N 1s (b) and C 1s (c) spectra of the prepared sample. (d) DFT calculation of electron transfer in Zr-BTB-COF-3 composite. (e,f) The mechanism diagram of BEF formation.
Fig. 4. (a,b) The CO and anisaldehyde production of TpTt-COF, Zr-BTB-NH2 and Zr-BTB-COF-3. (c,d) The CO and anisaldehyde yields of the prepared sample tested in the cycle. Photocatalytic reduction of CO2 under different conditions (e) and the result of 13C experiments (f).
Fig. 6. The surface charge density (a), TS-SPV measurement (b) and BEF strength (c) of the pure Zr-BTB-NH2 and Zr-BTB-COF-3. PL (d), time-resolved PL spectra (e), charge extraction efficiencies (f), maximum charge extraction times (g), photocurrent density (h) and EIS (i) results of the prepared samples.
Fig. 8. (a) CO2 adsorption state over Zr-BTB-NH2, TpTt-COF, and Zr-BTB-COF (grey, red, green and silver spheres stand for C, O, Zr and N atoms, respectively). Intermediate configurations for Zr-BTB-COF along photoreduction CO2 reaction (b) and free energy diagram (c) of CO2 photoreduction to CO over Zr-BTB-NH2 and Zr-BTB-COF.
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