Issue 32, 2024

Assessing plasmon-induced reactions by a combined quantum chemical-quantum/classical hybrid approach

Abstract

Plasmon-driven reactions on metal nanoparticles feature rich and complex mechanistic contributions, involving a manifold of electronic states, near-field enhancement, and heat, among others. Although localized surface plasmon resonances are believed to initiate these reactions, the complex reactivity demands deeper exploration. This computational study investigates factors influencing chemical processes on plasmonic nanoparticles, exemplified by protonation of 4-mercaptopyridine (4-MPY) on silver nanoparticles. We examine the impact of molecular binding modes and molecule-molecule interactions on the nanoparticle's surface, near-field electromagnetic effects, and charge-transfer phenomena. Two proton sources were considered at ambient conditions, molecular hydrogen and water. Our findings reveal that the substrate's binding mode significantly affects not only the energy barriers governing the thermodynamics and kinetics of the reaction but also determine the directionality of light-driven charge-transfer at the 4-MPY-Ag interface, pivotal in the chemical contribution involved in the reaction mechanism. In addition, significant field enhancement surrounding the adsorbed molecule is observed (eletromagnetic contribution) which was found insufficient to modify the ground state thermodynamics. Instead, it initiates and amplifies light-driven charge-transfer and thus modulates the excited states’ reactivity in the plasmonic-molecular hybrid system. This research elucidates protonation mechanisms on silver surfaces, highlighting the role of molecular-surface and molecule-molecule-surface orientation in plasmon-catalysis.

Graphical abstract: Assessing plasmon-induced reactions by a combined quantum chemical-quantum/classical hybrid approach

Supplementary files

Article information

Article type
Paper
Submitted
16 May 2024
Accepted
22 Jul 2024
First published
23 Jul 2024
This article is Open Access
Creative Commons BY license

Nanoscale, 2024,16, 15219-15229

Assessing plasmon-induced reactions by a combined quantum chemical-quantum/classical hybrid approach

S. Ehtesabi, M. Richter, S. Kupfer and S. Gräfe, Nanoscale, 2024, 16, 15219 DOI: 10.1039/D4NR02099E

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