Lead‐Free Perovskite‐Based Photocatalysts for Solar‐Driven Chemistry Technologies

Author:

Segura Camilo1ORCID,Flores Mario E.2ORCID,Osorio‐Román Igor2ORCID,Jara‐Quinteros Danilo H.3ORCID,Yoon Seog Joon4ORCID,Gualdrón‐Reyes Andrés F.2ORCID

Affiliation:

1. Departamento de Química, Facultad de Ciencias Universidad de Chile, Las Palmeras 3425 Ñuñoa Región Metropolitana 7800003 Chile

2. Instituto de Ciencias Químicas Facultad de Ciencias Universidad Austral de Chile Isla Teja Valdivia 5090000 Chile

3. Facultad de Ingenieria y Ciencias Universidad Adolfo Ibáñez Av. Padre Hurtado 750 Viña del Mar 2580335 Chile

4. Department of Chemistry College of Natural Science Yeungnam University Gyeongsan 38541 Republic of Korea

Abstract

AbstractThe high consumption of fossil fuels and concomitant contamination of the environment have promoted the search for new, low‐cost, and cleaner energy sources to satisfy the current energy demand around the world, decreasing the levels of greenhouse gas emissions to the atmosphere. One of the promising strategies to facilitate the generation of renewable energy involves solar‐driven chemical reactions, by using photocatalysts with improved sunlight absorption and carrier transfer abilities. Lead‐free halide perovskites (LFHPs) are good candidates, showing mesmerizing optical features, modulable band structure, oxidizing/reducing capability, and less toxicity compared to their Pb‐analogous. However, the literature reporting the photo(electro)chemical (PEC) properties of the LFHPs‐based materials for solar energy production is scarce. This review describes the current state‐of‐the‐art exhibiting the influence of the dimensionality, chemical composition and the formation of heterojunctions based on LFHPs on their photo(electro)activity for conducting solar‐driven hydrogen evolution, carbon dioxide (CO2) reduction, and the degradation of recalcitrant pollutants to obtain added‐value chemicals. In this way, it is also included the main challenges to be faced. Furthermore, we address some potential LFHPs to be explored in PEC systems, opening up the gamut of possibilities to consolidate the solar‐to‐chemical transformation as an innovative alternative to favor environmentally friendly energy production.

Funder

Dongil Culture and Scholarship Foundation

Publisher

Wiley

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