Chinese Journal of Catalysis ›› 2026, Vol. 85: 333-345.DOI: 10.1016/S1872-2067(26)64949-2
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Ping Lia, Liang Weia, Wei Xiab, Chengcheng Yuanc, Chenbin Aic, Meng Lia(
)
Received:2025-10-06
Accepted:2025-11-09
Online:2026-06-18
Published:2026-05-18
Contact:
*E-mail: limeng_2016@126.com (M. Li).Supported by:Ping Li, Liang Wei, Wei Xia, Chengcheng Yuan, Chenbin Ai, Meng Li. Ultrafast electron transfer in 2D/2D g-C3N4/WO3 S-scheme heterojunctions for enhanced H2O2 production[J]. Chinese Journal of Catalysis, 2026, 85: 333-345.
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URL: https://www.cjcatal.com/EN/10.1016/S1872-2067(26)64949-2
Fig. 1. (a) Schematic diagram illustrating the synthesis of the 2D/2D g-C3N4/WO3 heterostructures. XRD patterns (b) and FTIR spectra (c) of pure g-C3N4, WO3, and their composites.
Fig. 2. FESEM images of g-C3N4 (a), WO3 nanosheets (b), and CW15 (c). TEM (d) and HRTEM (e) images of CW15. HAADF image (f) and corresponding EDX elemental maps (g-j) of CW15, confirming the homogeneous distribution of C, N, W, and O.
Fig. 3. (a) UV-vis DRS spectra of pure g-C3N4, WO3, and their composites. Tauc plot analysis (b), Mott-Schottky electrochemical plots (c), and schematic diagram illustrating the electronic band structure (d) for g-C3N4 and WO3.
Fig. 4. PL spectra (a), TRPL decay profiles (b), transient photocurrent densities (c), and EIS Nyquist plots (d) of g-C3N4, WO3, and their composites.
Fig. 5. High-resolution XPS spectra for the C 1s (a), N 1s (b), W 4f (c), and O 1s (d) regions of g-C3N4, WO3, and CW15 under dark and light irradiation.
Fig. 8. Calculated electrostatic potentials of the g-C3N4 (001) (a) and WO3 (001) (b) slabs. (c) Charge density difference of the g-C3N4/WO3 heterojunction interface; cyan and yellow isosurfaces represent electron depletion and accumulation regions, respectively. (d) Schematic diagram illustrating the interfacial electron transfer pathways and IEF formation in the S-scheme heterojunction.
Fig. 9. Two-dimensional pseudocolor fs-TA spectral maps for g-C3N4 (a), WO3 (b) and CW15 (c). Normalized temporal decay profiles of the GSB signals for g-C3N4 and CW15 probed at 430 nm (d) and WO3 probed at 420 nm within 6000 ps (e). (f) Schematic diagram illustrating the mechanistic pathways for photogenerated carrier relaxation and the charge transfer dynamics within the g-C3N4/WO3 S-scheme heterojunction.
Fig. 10. (a) Time-dependent photocatalytic H2O2 production over the as-prepared samples using ethanol as a sacrificial agent. (b) Comparison of the H2O2 production rates for the as-prepared samples. (c) Photocatalytic decomposition kinetics of 1 mmol L-1 H2O2 under light irradiation for 60 min. (d) Kinetic constants for H2O2 formation and decomposition derived from the data in (a) and (c).
Fig. 11. (a) Photocatalytic H2O2 production by CW15 in an N2 atmosphere, pure water, and various trapping agents. (b) Pseudocolor map depicting the temporal spectral intensity evolution on CW15 during dark adsorption and subsequent light irradiation with a H2O, O2, and ethanol mixed gas flow, followed by light irradiation. (c) Representative in-situ DRIFTS spectra of CW15.
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