Chinese Journal of Catalysis ›› 2025, Vol. 77: 199-209.DOI: 10.1016/S1872-2067(25)64757-7

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Boosting photocatalytic water oxidation via interfacial electric field-mediated charge separation in S-scheme photocatalyst

Xinyue Tana,b,c,1, Minghui Zhanga,1, Yang Baib,c, Xiaoyu Liub,c, Jianfang Jinga,*(), Yiguo Sua,*()   

  1. aCollege of Chemistry and Chemical Engineering, Inner Mongolia University, Hohhot 010021, Inner Mongolia, China
    bBaotou Rare Earth New Material Technology R & D Center, Baotou 014030, Inner Mongolia, China
    cLucheng Laboratory, Baotou 014030, Inner Mongolia, China
  • Received:2025-04-24 Accepted:2025-06-06 Online:2025-10-18 Published:2025-10-05
  • Contact: *E-mail: jingjf@imu.edu.cn (J. Jing), cesyg@imu.edu.cn (Y. Su).
  • About author:1Contributed equally to this work.
  • Supported by:
    National Natural Science Foundation of China(22309093);National Natural Science Foundation of China(22166027);Natural Science Foundation of Inner Mongolia Autonomous Region(2023QN02001);Research Program of science and technology at Universities of Inner Mongolia Autonomous Region(NJZZ23093)

Abstract:

The major challenge in photocatalytic water splitting lies in water oxidation reactions, which still suffer from poor charge separation. This study overcame inefficient charge separation by establishing a robust interfacial electric field through the electrostatic-driven assembly of Co3O4 nanoparticles with a perylene imide supramolecule (PDINH). The well-aligned band structures and intimate interfacial contact in the PDINH/Co3O4 heterostructure create an enhanced interfacial electric field that is 4.1- and 53.2-fold stronger than those of individual PDINH and Co3O4, thus promoting directional charge separation and transfer. Moreover, S-scheme charge transfer strongly preserves the oxidative holes in PDINH to drive efficient water oxidation reactions. Consequently, PDINH/Co3O4 composite achieves a photocatalytic oxygen evolution rate of 29.26 mmol g-1 h-1 under visible light irradiation, 8.2-fold improvement over pristine PDINH, with an apparent quantum yield of 6.66% at 420 nm. This study provides fundamental insights into interfacial electric field control for the development of high-performance organic photocatalysts for efficient water oxidation.

Key words: Photocatalysis, Oxygen evolution, Interfacial electric field, S-scheme heterojunction, Perylene imide