The construction of S-scheme heterojunctions with a strong internal electric field (IEF) is critical for enhancing photocatalytic performance. Herein, an S-scheme heterojunction composed of CoAl-LDH and ZrO2 (denoted as LZ-60) is synthesized via a hydrothermal method. Under simulated solar irradiation, LZ-60 exhibited a CO production rate of 562.545 µmol g-1 h-1, which is five times higher than pristine CoAl-LDH and 43 times higher than pristine ZrO2. X-ray photoelectron spectroscopy (XPS) revealed electron transfer from CoAl-LDH to ZrO2 upon hybridization, generating an IEF at the interface. This electron transfer and IEF are further verified by density-functional theory (DFT) calculations of work functions. Comparative XPS analysis before and after the photocatalytic reaction confirmed the S-scheme charge transfer mechanism: the binding energies of Co and Al decreased, while Zr increased, indicating electron transfer from ZrO2 to CoAl-LDH under light. Photoelectrochemical characterizations (PL, EIS) demonstrated enhanced charge separation in the heterojunction. In-situ Fourier transform infrared spectroscopy identified CO* as the dominant intermediate, confirming high CO selectivity. The accelerated charge separation and strengthened redox capability synergistically contribute to the superior CO2 reduction performance of the S-scheme LZ-60 heterojunction. This work provides a valuable reference for designing efficient CO2 reduction photocatalysts.
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Mengwei Chen
J. J. Xiao
Yongxin Lei
University of Exeter
University of Science and Technology of China
Lanzhou University
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Chen et al. (Fri,) studied this question.
www.synapsesocial.com/papers/68c93fe601120bef803bb0a0 — DOI: https://doi.org/10.1002/advs.202510939