Skip to main navigation Skip to search Skip to main content

Thermodynamic and Kinetic Modulation of Artificial H2O2 Photosynthesis via Spatial Control of Redox Catalytic Sites

  • Xu Zhang (Co-first Author)
  • , Qixin Zhou (Co-first Author)
  • , Chen Li (Co-first Author)
  • , Hui Su
  • , Taoran Chen
  • , Peixin Cui
  • , Chaogang Ban
  • , Ying Tao
  • , Jiaxing Wang
  • , Yuheng Jiang
  • , Lingyue Liu
  • , Zhenyuan Teng
  • , Zhanxi Fan
  • , Yunxuan Zhao
  • , Kun Zheng
  • , Jie Ding
  • , Chenliang Su*
  • , Tierui Zhang*
  • , Bin Liu*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

The thermodynamic and kinetic mismatch between oxidative and reductive half-reactions represents a central barrier in photocatalysis, largely due to the absence of well-defined and functionally differentiated active sites. Herein, we construct Co and Pt redox dual-site catalysts (CoPt RDSCs), featuring nonbonded yet spatially close single atoms anchored on carbon nitride for H2O2 photosynthesis, thereby enabling site-specific utilization of photogenerated holes and electrons. The Co sites act as the hole centers that drive the four-electron water oxidation reaction, whereas the Pt sites serve as the electron centers that catalyze the two-electron oxygen reduction reaction, each lowering the thermodynamic barrier of its respective half-reaction. Crucially, the proximity of these electronically decoupled sites enables the directed migration of the oxidation products (O2 and H+) generated at Co sites to neighboring Pt sites, establishing an internal redox-coupling pathway that accelerates the overall reaction kinetics. Multidimensional in situ spectroscopy, transient photodynamics, and theoretical analyses confirm that each half-reaction proceeds on the designated site independently yet synergistically. Consequently, the CoPt RDSCs achieve a 19.33% apparent quantum efficiency at 420 nm and a 1.46% solar-to-chemical conversion efficiency for H2O2 synthesis in pure water, outperforming most of the reported photocatalysts under comparable conditions. Spatial engineering of redox active sites establishes a general design principle for constructing high-performance photocatalysts capable of coordinating oxidative and reductive transformations. © 2026 American Chemical Society
Original languageEnglish
Pages (from-to)11068-11080
JournalJournal of the American Chemical Society
Volume148
Issue number10
Online published6 Mar 2026
DOIs
Publication statusPublished - 18 Mar 2026

Funding

The authors acknowledge financial support of the National Key R&D Program of China (2023YFA1507201), City University of Hong Kong Startup fund (9020003), ITFRTH-Global STEM Professorship (9446006), JC STEM lab of Advanced CO2 Upcycling (9228005), National Natural Science Foundation of China (22421005, 52120105002, and 52432006), International Partnership Program of Chinese Academy of Sciences (174GJHZ2024054MI), Liaoning Binhai Laboratory (LBLD-2024-06), National Natural Science Foundation of China (21972094, 22101185, 22102102, and 22372102), National Key Research and Development Program of China (2021YFA1600800), Educational Commission of Guangdong Province (839-0000013131), Shenzhen Science and Technology Program (RCJC20200714114434086 and JCYJ20231121175024001), ZDSYS201707271014468, MEXT (20H05838, 24H00485, and 24K21809), and Guangdong Basic and Applied Basic Research Foundation (2020A1515010982).

RGC Funding Information

  • RGC-funded

Fingerprint

Dive into the research topics of 'Thermodynamic and Kinetic Modulation of Artificial H2O2 Photosynthesis via Spatial Control of Redox Catalytic Sites'. Together they form a unique fingerprint.

Cite this