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Negative linear compressibility in Se at ultra-high pressure above 120 GPa

A series of in situ synchrotron X-ray diffraction (XRD) measurements were carried out, combined with first-principles calculations, to study structural phase transitions of selenium at high pressures and room temperature. Several phase transitions were observed, among which an isostructural phase tr...

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Autores principales: Yuan, Shuhua, Wang, Luhong, Zhu, Sheng-cai, Liu, Fuyang, Zhang, Dongzhou, Prakapenka, Vitali B., Tkachev, Sergey, Liu, Haozhe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Union of Crystallography 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8895011/
https://www.ncbi.nlm.nih.gov/pubmed/35371496
http://dx.doi.org/10.1107/S2052252522000252
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author Yuan, Shuhua
Wang, Luhong
Zhu, Sheng-cai
Liu, Fuyang
Zhang, Dongzhou
Prakapenka, Vitali B.
Tkachev, Sergey
Liu, Haozhe
author_facet Yuan, Shuhua
Wang, Luhong
Zhu, Sheng-cai
Liu, Fuyang
Zhang, Dongzhou
Prakapenka, Vitali B.
Tkachev, Sergey
Liu, Haozhe
author_sort Yuan, Shuhua
collection PubMed
description A series of in situ synchrotron X-ray diffraction (XRD) measurements were carried out, combined with first-principles calculations, to study structural phase transitions of selenium at high pressures and room temperature. Several phase transitions were observed, among which an isostructural phase transition was found at around 120 GPa for the first time. Evolved from the rhombohedral (space group R 3 m) structure (Se-V), the new phase (Se-V′) exhibited an interesting increase of lattice parameter a at pressures from 120 to 148 GPa, known as negative linear compressibility (NLC). The discovery of NLC behavior observed in this work is mainly attributed to the accuracy and fine steps controlled by the membrane system for in situ XRD data collected with an exposure time of 0.5 s. After 140 GPa, a body-centered cubic (b.c.c.) structure Se-VI (space group Im 3 m) was formed, which remains stable up to 210 GPa, the highest pressure achieved in this study. The bulk moduli of phases Se-V, Se-V′ and Se-VI were estimated to be 83 ± 2, 321 ± 2 and 266 ± 7 GPa, respectively, according to the P–V curve fit by the third-order Birch–Murnaghan equation of state. The Se-V′ phase shows a bulk modulus almost 4 times larger than that of the Se-V phase, which is mainly due to the effect of its NLC. NLC in a higher pressure range is always more significant in terms of fundamental mechanism and new materials discovery, yet it has barely been reported at pressures above 100 GPa. This will hopefully inspire future studies on potential NLC behaviors in other materials at ultra-high pressure.
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spelling pubmed-88950112022-03-31 Negative linear compressibility in Se at ultra-high pressure above 120 GPa Yuan, Shuhua Wang, Luhong Zhu, Sheng-cai Liu, Fuyang Zhang, Dongzhou Prakapenka, Vitali B. Tkachev, Sergey Liu, Haozhe IUCrJ Research Papers A series of in situ synchrotron X-ray diffraction (XRD) measurements were carried out, combined with first-principles calculations, to study structural phase transitions of selenium at high pressures and room temperature. Several phase transitions were observed, among which an isostructural phase transition was found at around 120 GPa for the first time. Evolved from the rhombohedral (space group R 3 m) structure (Se-V), the new phase (Se-V′) exhibited an interesting increase of lattice parameter a at pressures from 120 to 148 GPa, known as negative linear compressibility (NLC). The discovery of NLC behavior observed in this work is mainly attributed to the accuracy and fine steps controlled by the membrane system for in situ XRD data collected with an exposure time of 0.5 s. After 140 GPa, a body-centered cubic (b.c.c.) structure Se-VI (space group Im 3 m) was formed, which remains stable up to 210 GPa, the highest pressure achieved in this study. The bulk moduli of phases Se-V, Se-V′ and Se-VI were estimated to be 83 ± 2, 321 ± 2 and 266 ± 7 GPa, respectively, according to the P–V curve fit by the third-order Birch–Murnaghan equation of state. The Se-V′ phase shows a bulk modulus almost 4 times larger than that of the Se-V phase, which is mainly due to the effect of its NLC. NLC in a higher pressure range is always more significant in terms of fundamental mechanism and new materials discovery, yet it has barely been reported at pressures above 100 GPa. This will hopefully inspire future studies on potential NLC behaviors in other materials at ultra-high pressure. International Union of Crystallography 2022-02-01 /pmc/articles/PMC8895011/ /pubmed/35371496 http://dx.doi.org/10.1107/S2052252522000252 Text en © Shuhua Yuan et al. 2022 https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution (CC-BY) Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.
spellingShingle Research Papers
Yuan, Shuhua
Wang, Luhong
Zhu, Sheng-cai
Liu, Fuyang
Zhang, Dongzhou
Prakapenka, Vitali B.
Tkachev, Sergey
Liu, Haozhe
Negative linear compressibility in Se at ultra-high pressure above 120 GPa
title Negative linear compressibility in Se at ultra-high pressure above 120 GPa
title_full Negative linear compressibility in Se at ultra-high pressure above 120 GPa
title_fullStr Negative linear compressibility in Se at ultra-high pressure above 120 GPa
title_full_unstemmed Negative linear compressibility in Se at ultra-high pressure above 120 GPa
title_short Negative linear compressibility in Se at ultra-high pressure above 120 GPa
title_sort negative linear compressibility in se at ultra-high pressure above 120 gpa
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8895011/
https://www.ncbi.nlm.nih.gov/pubmed/35371496
http://dx.doi.org/10.1107/S2052252522000252
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