Perovskite Nanocomposite: A Step Toward Photocatalytic Degradation of Organic Dyes

Author:

Minguez‐Avellan Miriam1ORCID,Farinós‐Navajas Noemi1ORCID,Noguera‐Gómez Jaume1ORCID,Sagra Rodríguez Víctor1ORCID,Vallés‐Pelarda Marta12ORCID,Momblona Cristina13ORCID,Ripolles Teresa S.1ORCID,Boix Pablo P.4ORCID,Abargues Rafael1ORCID

Affiliation:

1. Instituto de Ciencia de los Materiales Universidad de Valencia Catedrático José Beltrán 2 València 46071 Spain

2. Institute of Advanced Materials (INAM) Universitat Jaume I (UJI) Avenida de Vicent Sos Baynat s/n Castelló de la Plana 12006 Spain

3. Instituto de Nanociencia y Materiales de Aragón (INMA), CSIC‐Universidad de Zaragoza, Department of Chemical and Environmental Engineering, Campus Río Ebro‐Edificio I+D Universidad de Zaragoza C/ Mariano Esquillor S/N Zaragoza 50018 Spain

4. Instituto de Tecnología Química, Instituto de Tecnología Química Universitat Politècnica València‐Consejo Superior de Investigaciones Científicas Av. dels Tarongers València 46022 Spain

Abstract

Metal halide perovskites offer a promising opportunity for transforming solar energy into chemical energy, thereby addressing pressing environmental challenges. While their excellent optoelectronic properties have been successfully applied in photovoltaics, their potential in photocatalysis remains relatively unexplored. Herein, we report a novel humidity‐driven approach for the in situ synthesis of MAPbI3 nanocrystals (NCs) within a nickel acetate matrix, forming a nanocomposite thin film that enhances the system's stability and enables its use in photochemical reactions. UV‐Vis spectroscopy and X‐ray diffraction confirm the rapid and effective synthesis of NCs within the matrix after 1 min at 80% relative humidity (RH). Optimal photoconversion conditions are attained after 60 min of exposure at 80% RH, due to the increased porosity and nanocrystal size over time as revealed by electron microscopy. The MAPbI3‐Ni(AcO)2 nanocomposite exhibits superior photocatalytic activity compared to standard polycrystalline MAPbI3 films for the decomposition of Sudan III under simulated sunlight. Furthermore, the nanocomposite demonstrates good recyclability over multiple cycles. Overall, this work highlights the potential of MHP‐based nanocomposites for solar‐driven catalytic systems in pollution mitigation.

Funder

Ministerio de Ciencia e Innovación

Publisher

Wiley

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