Dopant-rich surface alloying effects on photoexcited carrier pathways in Cu nanoclusters with adsorbed CH4 and CO2

Abstract

The photocatalytic conversion of methane (CH4) and carbon dioxide (CO2) into value-added chemicals offers a promising route for mitigating greenhouse-gas emissions and producing solar fuels. Here, we employ real-time time-dependent density functional theory (rt-TDDFT) to investigate collective electronic excitations, hot-carrier (HC) generation, and adsorbate-resolved carrier localization in Cu nanoclusters under a dopant-rich surface-alloy limit. Specifically, we compare Cu147 clusters whose surface Cu atoms are extensively substituted by Ag, Pd, or Pt, providing an idealized platform to isolate dopant-identity effects on light–matter interaction and carrier pathways. Our simulations reveal a clear dopant-dependent dichotomy. Ag-rich surface substitution enhances optical absorption and produces broader HC energy distributions, indicative of plasmon-modified collective electronic excitations that facilitate carrier transfer to both CH4 and CO2. In contrast, Pd- and Pt-rich surface substitution suppresses collective dipolar response but promotes stronger localization of photoexcited carriers near adsorbed CH4, consistent with enhanced chemo-selective electronic coupling. We emphasize that the present study reports excited-state electronic descriptors relevant to photocatalysis—such as HC energy distributions and adsorbate-projected carrier populations—rather than reaction pathways or catalytic rates. These results provide mechanistic insight into how surface alloy composition governs the balance between collective excitation and carrier localization in Cu-based nanoclusters, offering qualitative design principles for plasmon-assisted photocatalytic systems.

Graphical abstract: Dopant-rich surface alloying effects on photoexcited carrier pathways in Cu nanoclusters with adsorbed CH4 and CO2

Article information

Article type
Paper
Submitted
29 Aug 2025
Accepted
10 Mar 2026
First published
17 Mar 2026

Nanoscale, 2026, Advance Article

Dopant-rich surface alloying effects on photoexcited carrier pathways in Cu nanoclusters with adsorbed CH4 and CO2

M. M. Muhammed and J. H. Mokkath, Nanoscale, 2026, Advance Article , DOI: 10.1039/D5NR03651H

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