Issue 40, 2025

Controlling plasmonic charge carrier flow at a nanoparticle–molecule interface using ligand chemistry

Abstract

Controlling charge-carrier flow at a metal–molecule interface is crucial for developing efficient plasmonic catalysts. Here, we demonstrate that the overlap of ligands’ LUMO/HOMO with Au electronic states governs the flow of charge carriers induced by surface plasmon resonance (SPR) or interband excitation. A (p)NO2-Ph-SH functionalized gold nanoprism (NO2-TP) substrate exhibited a 4-fold higher hydrogen production rate compared to a (p)Br-Ph-SH-functionalized substrate (Br-TP) under interband excitation (440 nm). Conversely, under SPR excitation (740 nm) the Br-TP substrate exhibited a 10-fold higher hydrogen production rate than a NO2-TP substrate. Theoretical calculations reveal that the HOMO of (p)NO2-Ph-SH aligns effectively with the Au d-band, promoting d-band hole transport. In contrast, the LUMO of (p)Br-Ph-SH exhibits better overlap with the sp band above the Fermi level, enabling efficient hot electron transport. These findings provide general guidelines to optimize plasmonic catalysts for different excitation wavelengths.

Graphical abstract: Controlling plasmonic charge carrier flow at a nanoparticle–molecule interface using ligand chemistry

Supplementary files

Article information

Article type
Communication
Submitted
19 May 2025
Accepted
23 Sep 2025
First published
23 Sep 2025

Nanoscale, 2025,17, 23315-23322

Controlling plasmonic charge carrier flow at a nanoparticle–molecule interface using ligand chemistry

G. Joshi, K. Patrikar, U. Singhal, A. Mondal and S. Khatua, Nanoscale, 2025, 17, 23315 DOI: 10.1039/D5NR02104A

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