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Pressure-Induced Phase Transition and Band Gap Decrease in Semiconducting β-Cu(2)V(2)O(7)

[Image: see text] The understanding of the interplay between crystal structure and electronic structure in semiconductor materials is of great importance due to their potential technological applications. Pressure is an ideal external control parameter to tune the crystal structures of semiconductor...

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Autores principales: Turnbull, Robin, González-Platas, Javier, Rodríguez, Fernando, Liang, Akun, Popescu, Catalin, He, Zhangzhen, Santamaría-Pérez, David, Rodríguez-Hernández, Plácida, Muñoz, Alfonso, Errandonea, Daniel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8889581/
https://www.ncbi.nlm.nih.gov/pubmed/35157423
http://dx.doi.org/10.1021/acs.inorgchem.1c03878
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author Turnbull, Robin
González-Platas, Javier
Rodríguez, Fernando
Liang, Akun
Popescu, Catalin
He, Zhangzhen
Santamaría-Pérez, David
Rodríguez-Hernández, Plácida
Muñoz, Alfonso
Errandonea, Daniel
author_facet Turnbull, Robin
González-Platas, Javier
Rodríguez, Fernando
Liang, Akun
Popescu, Catalin
He, Zhangzhen
Santamaría-Pérez, David
Rodríguez-Hernández, Plácida
Muñoz, Alfonso
Errandonea, Daniel
author_sort Turnbull, Robin
collection PubMed
description [Image: see text] The understanding of the interplay between crystal structure and electronic structure in semiconductor materials is of great importance due to their potential technological applications. Pressure is an ideal external control parameter to tune the crystal structures of semiconductor materials in order to investigate their emergent piezo-electrical and optical properties. Accordingly, we investigate here the high-pressure behavior of the semiconducting antiferromagnetic material β-Cu(2)V(2)O(7), finding it undergoes a pressure-induced phase transition to γ-Cu(2)V(2)O(7) below 4000 atm. The pressure-induced structural and electronic evolutions are investigated by single-crystal X-ray diffraction, absorption spectroscopy and ab initio density functional theory calculations. β-Cu(2)V(2)O(7) has previously been suggested as a promising photocatalyst for water splitting. Now, these new results suggest that β-Cu(2)V(2)O(7) could also be of interest with regards to barocaloric effects, due to the low phase -transition pressure, in particular because it is a multiferroic material. Moreover, the phase transition involves an electronic band gap decrease of approximately 0.2 eV (from 1.93 to 1.75 eV) and a large structural volume collapse of approximately 7%.
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spelling pubmed-88895812022-03-02 Pressure-Induced Phase Transition and Band Gap Decrease in Semiconducting β-Cu(2)V(2)O(7) Turnbull, Robin González-Platas, Javier Rodríguez, Fernando Liang, Akun Popescu, Catalin He, Zhangzhen Santamaría-Pérez, David Rodríguez-Hernández, Plácida Muñoz, Alfonso Errandonea, Daniel Inorg Chem [Image: see text] The understanding of the interplay between crystal structure and electronic structure in semiconductor materials is of great importance due to their potential technological applications. Pressure is an ideal external control parameter to tune the crystal structures of semiconductor materials in order to investigate their emergent piezo-electrical and optical properties. Accordingly, we investigate here the high-pressure behavior of the semiconducting antiferromagnetic material β-Cu(2)V(2)O(7), finding it undergoes a pressure-induced phase transition to γ-Cu(2)V(2)O(7) below 4000 atm. The pressure-induced structural and electronic evolutions are investigated by single-crystal X-ray diffraction, absorption spectroscopy and ab initio density functional theory calculations. β-Cu(2)V(2)O(7) has previously been suggested as a promising photocatalyst for water splitting. Now, these new results suggest that β-Cu(2)V(2)O(7) could also be of interest with regards to barocaloric effects, due to the low phase -transition pressure, in particular because it is a multiferroic material. Moreover, the phase transition involves an electronic band gap decrease of approximately 0.2 eV (from 1.93 to 1.75 eV) and a large structural volume collapse of approximately 7%. American Chemical Society 2022-02-14 2022-02-28 /pmc/articles/PMC8889581/ /pubmed/35157423 http://dx.doi.org/10.1021/acs.inorgchem.1c03878 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Turnbull, Robin
González-Platas, Javier
Rodríguez, Fernando
Liang, Akun
Popescu, Catalin
He, Zhangzhen
Santamaría-Pérez, David
Rodríguez-Hernández, Plácida
Muñoz, Alfonso
Errandonea, Daniel
Pressure-Induced Phase Transition and Band Gap Decrease in Semiconducting β-Cu(2)V(2)O(7)
title Pressure-Induced Phase Transition and Band Gap Decrease in Semiconducting β-Cu(2)V(2)O(7)
title_full Pressure-Induced Phase Transition and Band Gap Decrease in Semiconducting β-Cu(2)V(2)O(7)
title_fullStr Pressure-Induced Phase Transition and Band Gap Decrease in Semiconducting β-Cu(2)V(2)O(7)
title_full_unstemmed Pressure-Induced Phase Transition and Band Gap Decrease in Semiconducting β-Cu(2)V(2)O(7)
title_short Pressure-Induced Phase Transition and Band Gap Decrease in Semiconducting β-Cu(2)V(2)O(7)
title_sort pressure-induced phase transition and band gap decrease in semiconducting β-cu(2)v(2)o(7)
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8889581/
https://www.ncbi.nlm.nih.gov/pubmed/35157423
http://dx.doi.org/10.1021/acs.inorgchem.1c03878
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