TY - JOUR
T1 - Thermodynamic and Kinetic Modulation of Artificial H2O2 Photosynthesis via Spatial Control of Redox Catalytic Sites
AU - Zhang, Xu
AU - Zhou, Qixin
AU - Li, Chen
AU - Su, Hui
AU - Chen, Taoran
AU - Cui, Peixin
AU - Ban, Chaogang
AU - Tao, Ying
AU - Wang, Jiaxing
AU - Jiang, Yuheng
AU - Liu, Lingyue
AU - Teng, Zhenyuan
AU - Fan, Zhanxi
AU - Zhao, Yunxuan
AU - Zheng, Kun
AU - Ding, Jie
AU - Su, Chenliang
AU - Zhang, Tierui
AU - Liu, Bin
PY - 2026/3/18
Y1 - 2026/3/18
N2 - 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
AB - 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
UR - https://www.webofscience.com/wos/woscc/full-record/WOS:001708806600001
UR - https://www.scopus.com/pages/publications/105033084103
UR - https://www.scopus.com/record/pubmetrics.uri?eid=2-s2.0-105033084103&origin=recordpage
U2 - 10.1021/jacs.5c22625
DO - 10.1021/jacs.5c22625
M3 - RGC 21 - Publication in refereed journal
SN - 0002-7863
VL - 148
SP - 11068
EP - 11080
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 10
ER -