Articles producció científicaQuímica Física i Inorgànica

Solar-Driven Photocatalytic N2 Reduction to Ammonia Using Plasmonic Au@NiZIF-8 MOF Hybrids

  • Datos identificativos

    Identificador:  imarina:9469029
    Autores:  Arjones-Fernández, B; Malik, A; Guillade, L; Khatua, R; Besteiro, LV; Sousa-Castillo, A; Vázquez-González, M; Alvarez-Puebla, RA; Correa-Duarte, MA
    Resumen:
    Photocatalytic ammonia synthesis has emerged as a sustainable alternative to the fossil-fuel-dependent industrial Haber-Bosch process, utilizing solar energy to convert atmospheric nitrogen and water into NH3 under mild conditions. While this method significantly reduces CO2 emissions, it faces challenges such as low nitrogen solubility in water and competition with the hydrogen evolution reaction, which hinder its efficiency and scalability. Here, a core-shell approach is employed to incorporate controlled-morphology plasmonic gold nanoparticles (AuNPs) into Ni-doped ZIF-8 metal-organic frameworks (MOFS), forming a hybrid photocatalyst. In this design, AuNPs serve as the core, while the NiZIF-8 shell prevents nanoparticle agglomeration and facilitates enhanced nitrogen and proton transport to the AuNP surface during illumination. The Au@NiZIF-8 photocatalyst outperforms NiZIF-8 alone, benefiting from improved electron transfer, energy migration, and localized field polarization. These synergistic effects enhance nitrogen activation and stabilize reaction intermediates, significantly improving catalytic efficiency and selectivity. Furthermore, the catalytic activity remains stable across three consecutive cycles.
  • Otros:

    Enlace a la fuente original: https://advanced.onlinelibrary.wiley.com/doi/10.1002/adom.202502759
    Referencia de l'ítem segons les normes APA: Arjones-Fernández, B; Malik, A; Guillade, L; Khatua, R; Besteiro, LV; Sousa-Castillo, A; Vázquez-González, M; Alvarez-Puebla, RA; Correa-Duarte, MA (2025). Solar-Driven Photocatalytic N2 Reduction to Ammonia Using Plasmonic Au@NiZIF-8 MOF Hybrids. Advanced Optical Materials, 13(34), -. DOI: 10.1002/adom.202502759
    Referencia al articulo segun fuente origial: Advanced Optical Materials. 13 (34):
    DOI del artículo: 10.1002/adom.202502759
    Año de publicación de la revista: 2025-12-01
    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: Arjones-Fernández, B; Malik, A; Guillade, L; Khatua, R; Besteiro, LV; Sousa-Castillo, A; Vázquez-González, M; Alvarez-Puebla, RA; Correa-Duarte, MA
    Acceso a la licencia de uso: https://creativecommons.org/licenses/by/3.0/es/
    Áreas temáticas: Atomic and molecular physics, and optics, Electronic, optical and magnetic materials, Materials science, multidisciplinary, Optics
    Direcció de correo del autor: ramon.alvarez@urv.cat
  • Palabras clave:

    Crystals
    Gold nanoparticles
    Hybrid photocatalyst
    Nanoparticles
    Nitrogen reduction
    Plasmonic photocatalyst
    Solar light
    Zeolitic imidazolate framework-8
    Zif-8
    Zif-8 mof
    Atomic and Molecular Physics
    and Optics
    Electronic
    Optical and Magnetic Materials
    Materials Science
    Multidisciplinary
    Optics
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