Chinese Journal of Catalysis ›› 2026, Vol. 81: 284-298.DOI: 10.1016/S1872-2067(25)64845-5

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Multi-intermolecular forces strengthen interfacial carrier mobility in poly (barbituric acid) all-organic heterojunction systems for efficient solar-to-hydrogen conversion

Zhe Zhanga,1, Guixu Pana,1, Wei Zhua,1, Keyu Zhanga, Guijie Liangb(), Shihan Wanga, Ning Wanga(), Yan Xingc, Yunfeng Lia()   

  1. a College of Environmental and Chemical Engineering, Key Laboratory of Functional Textile Material and Product of the Ministry of Education, Xi'an Polytechnic University, Xi'an 710048, Shaanxi, China
    b Hubei Key Laboratory of Low Dimensional Optoelectronic Materials and Devices, Hubei University of Arts and Science, Xiangyang 441053, Hubei, China
    c Jilin Provincial Key Laboratory of Advanced Energy Materials, Department of Chemistry, Northeast Normal University, Changchun 130024, Jilin, China
  • Received:2025-06-23 Accepted:2025-08-06 Online:2026-02-18 Published:2025-12-26
  • Contact: *E-mail: liyf377@nenu.edu.cn (Y. Li),ninaw2018@163.com (N. Wang),guijie-liang@hbuas.edu.cn (G. Liang).
  • About author:1 Contributed equally to this work.
  • Supported by:
    National Natural Science Foundation of China(22578345);National Natural Science Foundation of China(21872023);National Natural Science Foundation of China(22372028);National Natural Science Foundation of China(22279031);Shaanxi Provincial Key Research and Development Program(2022GY-166);Shaanxi Provincial Key Research and Development Program(2024SF-YBXM-593);Shaanxi Provincial Department of Education Youth Innovation Team Research Plan Project(24JP072);Scientific Research Program Funded by Shaanxi Provincial Education Department(23JC033);Xi'an Science and Technology Planning Project(24GXFW0021)

Abstract:

The development of high-performance all-organic heterojunction photocatalytic systems and the elucidation of their charge carrier excitation and interface migration dynamics have attracted significant research interest. Herein, poly (barbituric acid)/g-C3N4 (PBA/UCN) all-organic heterojunctions were prepared by exploiting multiple intermolecular interactions to induce fast interface charge-carrier transfer with a lifetime of approximately 5.05 ps, as was directly verified by in-situ Kelvin probe force microscopy and in-situ irradiation X-ray photoelectron spectroscopy. Moreover, the dynamics and lifetimes of charge carriers were studied by fitting the decay curves of excited-state absorption signals at 600 nm and ground-state bleaching signals at 495 nm obtained by femtosecond transient absorption spectroscopy to further reveal the diffusion, relaxation, and transfer processes of PBA/UCN. The as-prepared PBA/UCN all-organic molecular heterojunction with optimal redox ability exhibits an excellent H2 evolution rate of 12.55 mmol h-1 g-1 and an apparent quantum efficiency of 17.12% at 420 ± 15 nm. In particular, we demonstrate that PBA, which is a promising oxidizing organic semiconductor, can be coupled with various reducing organic photocatalytic materials such as poly(triazine imide), poly(heptazine imide), perylene-3,4,9,10- tetracarboxylic acid, and covalent triazine-based frameworks to obtain a series of efficient all-organic heterojunction photocatalysts.

Key words: Photocatalysis, Heterojunction, Poly (barbituric acid), Intermolecular force, H2 production