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Band Gap Tuning of Solution-Processed Ferroelectric Perovskite BiFe(1–x)Co(x)O(3) Thin Films

[Image: see text] Ferroelectric perovskite oxides are emerging as a promising photoactive layer for photovoltaic applications because of their very high stability and their alternative ferroelectricity-related mechanism for solar energy conversion that could lead to extraordinarily high efficiencies...

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Autores principales: Machado, Pamela, Scigaj, Mateusz, Gazquez, Jaume, Rueda, Estel, Sánchez-Díaz, Antonio, Fina, Ignasi, Gibert-Roca, Martí, Puig, Teresa, Obradors, Xavier, Campoy-Quiles, Mariano, Coll, Mariona
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6388762/
https://www.ncbi.nlm.nih.gov/pubmed/30828131
http://dx.doi.org/10.1021/acs.chemmater.8b04380
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author Machado, Pamela
Scigaj, Mateusz
Gazquez, Jaume
Rueda, Estel
Sánchez-Díaz, Antonio
Fina, Ignasi
Gibert-Roca, Martí
Puig, Teresa
Obradors, Xavier
Campoy-Quiles, Mariano
Coll, Mariona
author_facet Machado, Pamela
Scigaj, Mateusz
Gazquez, Jaume
Rueda, Estel
Sánchez-Díaz, Antonio
Fina, Ignasi
Gibert-Roca, Martí
Puig, Teresa
Obradors, Xavier
Campoy-Quiles, Mariano
Coll, Mariona
author_sort Machado, Pamela
collection PubMed
description [Image: see text] Ferroelectric perovskite oxides are emerging as a promising photoactive layer for photovoltaic applications because of their very high stability and their alternative ferroelectricity-related mechanism for solar energy conversion that could lead to extraordinarily high efficiencies. One of the biggest challenges so far is to reduce their band gap toward the visible region while simultaneously retaining ferroelectricity. To address these two issues, herein an elemental composition engineering of BiFeO(3) is performed by substituting Fe by Co cations, as a means to tune the characteristics of the transition metal–oxygen bond. We demonstrate by solution processing the formation of epitaxial, pure phase, and stable BiFe(1–x)Co(x)O(3) thin films for x ≤ 0.3 and film thickness up to 100 nm. Importantly, the band gap can be tuned from 2.7 to 2.3 eV upon cobalt substitution while simultaneously enhancing ferroelectricity. As a proof of concept, nonoptimized vertical devices have been fabricated and, reassuringly, the electrical photoresponse in the visible region of the Co-substituted phase is improved with respect to the unsubstituted oxide.
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spelling pubmed-63887622020-01-16 Band Gap Tuning of Solution-Processed Ferroelectric Perovskite BiFe(1–x)Co(x)O(3) Thin Films Machado, Pamela Scigaj, Mateusz Gazquez, Jaume Rueda, Estel Sánchez-Díaz, Antonio Fina, Ignasi Gibert-Roca, Martí Puig, Teresa Obradors, Xavier Campoy-Quiles, Mariano Coll, Mariona Chem Mater [Image: see text] Ferroelectric perovskite oxides are emerging as a promising photoactive layer for photovoltaic applications because of their very high stability and their alternative ferroelectricity-related mechanism for solar energy conversion that could lead to extraordinarily high efficiencies. One of the biggest challenges so far is to reduce their band gap toward the visible region while simultaneously retaining ferroelectricity. To address these two issues, herein an elemental composition engineering of BiFeO(3) is performed by substituting Fe by Co cations, as a means to tune the characteristics of the transition metal–oxygen bond. We demonstrate by solution processing the formation of epitaxial, pure phase, and stable BiFe(1–x)Co(x)O(3) thin films for x ≤ 0.3 and film thickness up to 100 nm. Importantly, the band gap can be tuned from 2.7 to 2.3 eV upon cobalt substitution while simultaneously enhancing ferroelectricity. As a proof of concept, nonoptimized vertical devices have been fabricated and, reassuringly, the electrical photoresponse in the visible region of the Co-substituted phase is improved with respect to the unsubstituted oxide. American Chemical Society 2019-01-16 2019-02-12 /pmc/articles/PMC6388762/ /pubmed/30828131 http://dx.doi.org/10.1021/acs.chemmater.8b04380 Text en Copyright © 2019 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Machado, Pamela
Scigaj, Mateusz
Gazquez, Jaume
Rueda, Estel
Sánchez-Díaz, Antonio
Fina, Ignasi
Gibert-Roca, Martí
Puig, Teresa
Obradors, Xavier
Campoy-Quiles, Mariano
Coll, Mariona
Band Gap Tuning of Solution-Processed Ferroelectric Perovskite BiFe(1–x)Co(x)O(3) Thin Films
title Band Gap Tuning of Solution-Processed Ferroelectric Perovskite BiFe(1–x)Co(x)O(3) Thin Films
title_full Band Gap Tuning of Solution-Processed Ferroelectric Perovskite BiFe(1–x)Co(x)O(3) Thin Films
title_fullStr Band Gap Tuning of Solution-Processed Ferroelectric Perovskite BiFe(1–x)Co(x)O(3) Thin Films
title_full_unstemmed Band Gap Tuning of Solution-Processed Ferroelectric Perovskite BiFe(1–x)Co(x)O(3) Thin Films
title_short Band Gap Tuning of Solution-Processed Ferroelectric Perovskite BiFe(1–x)Co(x)O(3) Thin Films
title_sort band gap tuning of solution-processed ferroelectric perovskite bife(1–x)co(x)o(3) thin films
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6388762/
https://www.ncbi.nlm.nih.gov/pubmed/30828131
http://dx.doi.org/10.1021/acs.chemmater.8b04380
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