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  4. Correlating Ligand Properties with Photocatalytic Efficiency: A Computational Framework for Interface Engineering
 
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Correlating Ligand Properties with Photocatalytic Efficiency: A Computational Framework for Interface Engineering

Source
ACS Applied Materials and Interfaces
ISSN
19448244
Date Issued
2025-06-04
Author(s)
Khan, Sohini
Patrikar, Kalyani
Sewak, Ram
Mondal, Anirban  
DOI
10.1021/acsami.5c03069
Volume
17
Issue
22
Abstract
We present the application of the Marcus-Hush formalism as a theoretical framework to investigate charge transfer dynamics in ligand-protected Au systems. By integrating key parameters such as energy level differences and electronic coupling, this approach enables the prediction of photocatalytic efficiency in electron-driven water splitting. Simulations of diverse ligand-functionalized AuNPs establish a clear correlation between charge transfer rates and hydrogen evolution, specifically for functionalized AuNPs bearing aromatic thiols with various para-substituents. Additionally, we extend this framework to selenol-substituted systems, revealing that while selenols perform comparably to thiols in some cases, they do not consistently enhance photocatalytic activity. Beyond electron-driven hydrogen production, we further explore the role of ligand chemistry in modulating hole transfer processes relevant to oxidative half-reactions. In this context, the OH-thiol ligand-functionalized AuNP emerges as the most effective photocatalyst for hole-driven reactions. Overall, this study provides a systematic methodology for screening and designing ligand-functionalized AuNP photocatalysts, offering mechanistic insights into how ligand properties govern photocatalytic performance.
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URI
https://d8.irins.org/handle/IITG2025/28098
Subjects
and reorganization energy | charge transfer kinetics | electronic coupling | interface engineering | ligand-functionalized gold nanoparticles | Marcus−Hush formalism | photocatalytic water splitting
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