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New-phase retention in colloidal core/shell nanocrystals via pressure-modulated phase engineering

Core/shell nanocrystals (NCs) integrate collaborative functionalization that would trigger advanced properties, such as high energy conversion efficiency, nonblinking emission, and spin–orbit coupling. Such prospects are highly correlated with the crystal structure of individual constituents. Howeve...

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Autores principales: Wang, Yixuan, Liu, Hao, Wu, Min, Wang, Kai, Sui, Yongming, Liu, Zhaodong, Lu, Siyu, Nie, Zhihong, Tse, John S., Yang, Xinyi, Zou, Bo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8133026/
https://www.ncbi.nlm.nih.gov/pubmed/34040733
http://dx.doi.org/10.1039/d1sc00498k
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author Wang, Yixuan
Liu, Hao
Wu, Min
Wang, Kai
Sui, Yongming
Liu, Zhaodong
Lu, Siyu
Nie, Zhihong
Tse, John S.
Yang, Xinyi
Zou, Bo
author_facet Wang, Yixuan
Liu, Hao
Wu, Min
Wang, Kai
Sui, Yongming
Liu, Zhaodong
Lu, Siyu
Nie, Zhihong
Tse, John S.
Yang, Xinyi
Zou, Bo
author_sort Wang, Yixuan
collection PubMed
description Core/shell nanocrystals (NCs) integrate collaborative functionalization that would trigger advanced properties, such as high energy conversion efficiency, nonblinking emission, and spin–orbit coupling. Such prospects are highly correlated with the crystal structure of individual constituents. However, it is challenging to achieve novel phases in core/shell NCs, generally non-existing in bulk counterparts. Here, we present a fast and clean high-pressure approach to fabricate heterostructured core/shell MnSe/MnS NCs with a new phase that does not occur in their bulk counterparts. We determine the new phase as an orthorhombic MnP structure (B31 phase), with close-packed zigzagged arrangements within unit cells. Encapsulation of the solid MnSe nanorod with an MnS shell allows us to identify two separate phase transitions with recognizable diffraction patterns under high pressure, where the heterointerface effect regulates the wurtzite → rocksalt → B31 phase transitions of the core. First-principles calculations indicate that the B31 phase is thermodynamically stable under high pressure and can survive under ambient conditions owing to the synergistic effect of subtle enthalpy differences and large surface energy in nanomaterials. The ability to retain the new phase may open up the opportunity for future manipulation of electronic and magnetic properties in heterostructured nanostructures.
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spelling pubmed-81330262021-05-25 New-phase retention in colloidal core/shell nanocrystals via pressure-modulated phase engineering Wang, Yixuan Liu, Hao Wu, Min Wang, Kai Sui, Yongming Liu, Zhaodong Lu, Siyu Nie, Zhihong Tse, John S. Yang, Xinyi Zou, Bo Chem Sci Chemistry Core/shell nanocrystals (NCs) integrate collaborative functionalization that would trigger advanced properties, such as high energy conversion efficiency, nonblinking emission, and spin–orbit coupling. Such prospects are highly correlated with the crystal structure of individual constituents. However, it is challenging to achieve novel phases in core/shell NCs, generally non-existing in bulk counterparts. Here, we present a fast and clean high-pressure approach to fabricate heterostructured core/shell MnSe/MnS NCs with a new phase that does not occur in their bulk counterparts. We determine the new phase as an orthorhombic MnP structure (B31 phase), with close-packed zigzagged arrangements within unit cells. Encapsulation of the solid MnSe nanorod with an MnS shell allows us to identify two separate phase transitions with recognizable diffraction patterns under high pressure, where the heterointerface effect regulates the wurtzite → rocksalt → B31 phase transitions of the core. First-principles calculations indicate that the B31 phase is thermodynamically stable under high pressure and can survive under ambient conditions owing to the synergistic effect of subtle enthalpy differences and large surface energy in nanomaterials. The ability to retain the new phase may open up the opportunity for future manipulation of electronic and magnetic properties in heterostructured nanostructures. The Royal Society of Chemistry 2021-04-02 /pmc/articles/PMC8133026/ /pubmed/34040733 http://dx.doi.org/10.1039/d1sc00498k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Wang, Yixuan
Liu, Hao
Wu, Min
Wang, Kai
Sui, Yongming
Liu, Zhaodong
Lu, Siyu
Nie, Zhihong
Tse, John S.
Yang, Xinyi
Zou, Bo
New-phase retention in colloidal core/shell nanocrystals via pressure-modulated phase engineering
title New-phase retention in colloidal core/shell nanocrystals via pressure-modulated phase engineering
title_full New-phase retention in colloidal core/shell nanocrystals via pressure-modulated phase engineering
title_fullStr New-phase retention in colloidal core/shell nanocrystals via pressure-modulated phase engineering
title_full_unstemmed New-phase retention in colloidal core/shell nanocrystals via pressure-modulated phase engineering
title_short New-phase retention in colloidal core/shell nanocrystals via pressure-modulated phase engineering
title_sort new-phase retention in colloidal core/shell nanocrystals via pressure-modulated phase engineering
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8133026/
https://www.ncbi.nlm.nih.gov/pubmed/34040733
http://dx.doi.org/10.1039/d1sc00498k
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