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Interface-Dependent Selectivity in Plasmon-Driven Chemical Reactions

Stefancu, Andrei et al · American Chemical Society · 2023

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Plasmonic nanoparticles can drive chemical reactions powered by sunlight. These processes involve the excitation of surface plasmon resonances (SPR) and the subsequent charge transfer to adsorbed molecular orbitals. Nonetheless, controlling the flow of energy and charge from SPR to adsorbed molecules is still difficult to predict or tune. Here, we show the crucial role of halide ions in modifying the energy landscape of a plasmon-driven chemical reaction by carefully engineering the nanoparticle-molecule interface. By doing so, the selectivity of plasmon-driven chemical reactions can be controlled, either enhancing or inhibiting the metal-molecule charge and energy transfer or by regulating the vibrational pumping rate. These results provide an elegant method for controlling the energy flow from plasmonic nanoparticles to adsorbed molecules, in situ, and selectively targeting chemical bonds by changing the chemical nature of the metal-molecule interface. Fil: Stefancu, Andrei. Ludwig Maximilians Universitat; Alemania Fil: Gargiulo, Julian. Ludwig Maximilians Universitat; Alemania. Consejo Nacional de Investigaciones Científicas y Técnicas; Argentina

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APA 7

Stefancu, A. E. A. (2023). Interface-Dependent Selectivity in Plasmon-Driven Chemical Reactions. http://hdl.handle.net/11336/223885

MLA

Stefancu, Andrei et al. "Interface-Dependent Selectivity in Plasmon-Driven Chemical Reactions." 2023. http://hdl.handle.net/11336/223885.

Chicago

Stefancu, Andrei et al. 2023. "Interface-Dependent Selectivity in Plasmon-Driven Chemical Reactions.". http://hdl.handle.net/11336/223885.

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Stefancu, A. E. A. 2023, Interface-Dependent Selectivity in Plasmon-Driven Chemical Reactions, American Chemical Society, available at: http://hdl.handle.net/11336/223885 [Accessed 7 Aug. 2026].

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Title
Interface-Dependent Selectivity in Plasmon-Driven Chemical Reactions
Author / contributors
Stefancu, Andrei et al
Publisher
American Chemical Society
Publication year
2023
ISSN
3119-3127
ISSN
3119-3127
Language
English

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