Tracing the Origin of Driving Force of Photoinduced Interfacial Electron Transfer Reaction by Colocated Scanning
Wenjing Nan1,2, Xuan Liu1, Jiayang Lin1
1State Key Laboratory of Physical Chemistry of Solid Surfaces; Fujian Science & Technology Innovation Laboratory for Energy Materials of China; Engineering Research Center of Electrochemical Technologies of Ministry of Education; Department of Mechanical and Electrical Engineering, Pen-Tung Sah Institute of Micro-Nano Science and Technology; Department of Chemistry, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, China.
Abstract:
Solar energy is the ultimate power source for mass and energy conversions on this planet through photochemical reactions. Among these, photoinduced interfacial electron transfer (PIET) reactions are driven by photofield-induced Volta potentials, fundamentally different from classical electrochemical processes by directly applied potential through a potentiostat. Herein, we develop a colocated scanning electrochemical microscopy (SECM) approach─integrating with atomic force microscopy (AFM) and scanning Kelvin probe microscopy (SKPM)─to correlate the morphology, Volta potential, and PIET kinetics at the same located silver sheet/single-layer graphene (Ag/SLG) electrode. We reveal that illumination induces π-π* transitions in SLG and d-electron excitations in Ag, leading to a synchronous positive shift of the Fermi level of the Ag/SLG electrode, acting effectively as a photogenerated interfacial potential. More importantly, the Volta potential difference across the Ag/SLG boundary, determined by their electron work function, remains nearly constant. The synergy between the photoinduced Volta potential and the Volta potential difference across the Ag/SLG boundary underpins the enhanced PIET efficiency. This study provides a direct methodology to quantify physical-field-driven interfacial electron transfer and establishes a framework for the rational design of catalyst/carrier systems beyond conventional electrochemical paradigms.
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