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Updated: Feb 5, 2026

Colloidal Synthesis of Nanopatch Antennas for Applications in Plasmonics and Nanophotonics
Published on: May 28, 2016
Plasmonic Gold Antenna-Copper Molecular Complex Reactor Assembly for Exclusive CO2 to Formate Conversion under
Tannu Kaushik1, Arkaprava Chowdhury2, Manodip Pal2
1Centre for Climate Studies, Indian Institute of Technology Bombay, Powai, Mumbai 400076, India.
Abstract:
Achieving high product selectivity in photoelectrochemical CO2 reduction remains a persistent challenge for molecular electrocatalyst platforms. Herein, we present a plasmonic-molecular hybrid catalyst, AuTNP@Cu(PAP)2, comprising a redox-active copper complex, [Cu(PAP)2], immobilized onto gold triangular nanoprisms (AuTNPs) through noncovalent interactions. The intimate coupling between the plasmonic antenna and the molecular catalytic sites enables highly selective photoelectrochemical CO2-to-formate conversion, achieving a Faradaic efficiency (FE) of ∼95% and a formate yield of 468.3 μmol·cm-2 within 4 h at -0.56 V vs RHE. The hybrid electrode exhibits remarkable durability, maintaining an average formate production rate of ∼350 μmol·h-1·cm-2 and 91% FE over 25 h of continuous operation in an H-Cell. Mechanistic investigations combining ultrafast transient absorption spectroscopy, in situ Raman analysis, and density functional theory (DFT) calculations reveal that the Au-Cu interfacial interaction promotes plasmon-induced hot-electron transfer, stabilizes the surface-bound *OCHO intermediate, and extends charge-separated lifetimes, which are key factors governing the observed formate selectivity. Integration of the hybrid electrode into a custom-built photoelectrochemical flow reactor demonstrated scalability, delivering an FE of 90% at 50 mA·cm-2 under white-light illumination. This study establishes a unified design principle for constructing robust plasmon-driven molecular architectures that achieve high selectivity, efficiency, and durability in the CO2 conversion reactions.
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