Articles producció científicaQuímica Física i Inorgànica

Plasmon-Driven Nitrogen Photoreduction to Ammonia Using Silica-Encapsulated Au Nanostar/TiO2 Nanohybrids

  • Datos identificativos

    Identificador:  imarina:9462754
    Autores:  Negrín-Montecelo, Y; Sousa-Castillo, A; Cardeñoso-Garrido, N; Guillade, L; Besteiro, LV; Vázquez-González, M; Alvarez-Puebla, RA; Puértolas, B; Correa-Duarte, MA
    Resumen:
    Plasmon-induced photocatalysis has gained traction as a promising means to efficiently drive chemical reactions using light. In particular, photocatalytic N2 reduction emerges as a sustainable route to produce ammonia, a key starting material in the manufacture of nitrogen-rich fertilizers and a potential energy vector. Here, various Au nanoparticle morphologies combined with a TiO2 semiconductor are initially screened, and Au nanostar is identified as the most efficient morphology. Encasing this material within a mesoporous silica shell improved their stability and selectivity to ammonia formation, eliminating the need for hole scavengers. Advanced characterization including TEM and operando SERS spectroscopy together with the evaluation of the material in the presence of optical filters and probes reveal that the superior performance originates from the injection of excited "hot" charge carriers from the plasmonic material to the semiconductor, driving N2 reduction to NH3 under visible light. The wavelength-dependence experiments demonstrate a synergistic interaction between gold interband transitions and plasmonic effects, combined with the TiO2 semiconductor, which enhances catalytic performance across the spectrum. Importantly, hot holes generated at the plasmonic sites oxidize water into oxygen and subsequently to nitrates, maintaining charge balance in the photocatalyst. This dual functionality ensures effective charge circulation and sustainable performance across multiple cycles.
  • Otros:

    Enlace a la fuente original: https://advanced.onlinelibrary.wiley.com/doi/10.1002/aenm.202501526
    Referencia de l'ítem segons les normes APA: Negrín-Montecelo, Y; Sousa-Castillo, A; Cardeñoso-Garrido, N; Guillade, L; Besteiro, LV; Vázquez-González, M; Alvarez-Puebla, RA; Puértolas, B; Correa (2025). Plasmon-Driven Nitrogen Photoreduction to Ammonia Using Silica-Encapsulated Au Nanostar/TiO2 Nanohybrids. Advanced Energy Materials, 15(33), -. DOI: 10.1002/aenm.202501526
    Referencia al articulo segun fuente origial: Advanced Energy Materials. 15 (33):
    DOI del artículo: 10.1002/aenm.202501526
    Año de publicación de la revista: 2025-09-01
    Entidad: Universitat Rovira i Virgili
    Versión del articulo depositado: info:eu-repo/semantics/publishedVersion
    Fecha de alta del registro: 2026-02-13
    Autor/es de la URV: Alvarez Puebla, Ramon Angel
    Departamento: Química Física i Inorgànica
    URL Documento de licencia: https://repositori.urv.cat/ca/proteccio-de-dades/
    Tipo de publicación: Journal Publications
    Autor según el artículo: Negrín-Montecelo, Y; Sousa-Castillo, A; Cardeñoso-Garrido, N; Guillade, L; Besteiro, LV; Vázquez-González, M; Alvarez-Puebla, RA; Puértolas, B; Correa-Duarte, MA
    Acceso a la licencia de uso: https://creativecommons.org/licenses/by/3.0/es/
    Áreas temáticas: Chemistry, physical, Energy & fuels, General materials science, Materials science (all), Materials science (miscellaneous), Materials science, multidisciplinary, Physics, applied, Physics, condensed matter, Renewable energy, sustainability and the environment
    Direcció de correo del autor: ramon.alvarez@urv.cat
  • Palabras clave:

    Ammonia
    Enhancement
    Gold nanoparticles
    Hot-spots
    Hybrid photocatalyst
    Nanoparticles
    Nitrogen reduction
    Photocatalysts
    Plasmonic photocatalys
    Plasmonic photocatalyst
    Sola
    Chemistry
    Physical
    Energy & Fuels
    Materials Science (Miscellaneous)
    Materials Science
    Multidisciplinary
    Physics
    Applied
    Condensed Matter
    Renewable Energy
    Sustainability and the Environment
    General materials science
    Materials science (all)
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