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Scalable solution-phase epitaxial growth of symmetry-mismatched heterostructures on two-dimensional crystal soft template

Epitaxial heterostructures with precisely controlled composition and electronic modulation are of central importance for electronics, optoelectronics, thermoelectrics, and catalysis. In general, epitaxial material growth requires identical or nearly identical crystal structures with small misfit in...

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Autores principales: Lin, Zhaoyang, Yin, Anxiang, Mao, Jun, Xia, Yi, Kempf, Nicholas, He, Qiyuan, Wang, Yiliu, Chen, Chih-Yen, Zhang, Yanliang, Ozolins, Vidvuds, Ren, Zhifeng, Huang, Yu, Duan, Xiangfeng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for the Advancement of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5055388/
https://www.ncbi.nlm.nih.gov/pubmed/27730211
http://dx.doi.org/10.1126/sciadv.1600993
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author Lin, Zhaoyang
Yin, Anxiang
Mao, Jun
Xia, Yi
Kempf, Nicholas
He, Qiyuan
Wang, Yiliu
Chen, Chih-Yen
Zhang, Yanliang
Ozolins, Vidvuds
Ren, Zhifeng
Huang, Yu
Duan, Xiangfeng
author_facet Lin, Zhaoyang
Yin, Anxiang
Mao, Jun
Xia, Yi
Kempf, Nicholas
He, Qiyuan
Wang, Yiliu
Chen, Chih-Yen
Zhang, Yanliang
Ozolins, Vidvuds
Ren, Zhifeng
Huang, Yu
Duan, Xiangfeng
author_sort Lin, Zhaoyang
collection PubMed
description Epitaxial heterostructures with precisely controlled composition and electronic modulation are of central importance for electronics, optoelectronics, thermoelectrics, and catalysis. In general, epitaxial material growth requires identical or nearly identical crystal structures with small misfit in lattice symmetry and parameters and is typically achieved by vapor-phase depositions in vacuum. We report a scalable solution-phase growth of symmetry-mismatched PbSe/Bi(2)Se(3) epitaxial heterostructures by using two-dimensional (2D) Bi(2)Se(3) nanoplates as soft templates. The dangling bond–free surface of 2D Bi(2)Se(3) nanoplates guides the growth of PbSe crystal without requiring a one-to-one match in the atomic structure, which exerts minimal restriction on the epitaxial layer. With a layered structure and weak van der Waals interlayer interaction, the interface layer in the 2D Bi(2)Se(3) nanoplates can deform to accommodate incoming layer, thus functioning as a soft template for symmetry-mismatched epitaxial growth of cubic PbSe crystal on rhombohedral Bi(2)Se(3) nanoplates. We show that a solution chemistry approach can be readily used for the synthesis of gram-scale PbSe/Bi(2)Se(3) epitaxial heterostructures, in which the square PbSe (001) layer forms on the trigonal/hexagonal (0001) plane of Bi(2)Se(3) nanoplates. We further show that the resulted PbSe/Bi(2)Se(3) heterostructures can be readily processed into bulk pellet with considerably suppressed thermal conductivity (0.30 W/m·K at room temperature) while retaining respectable electrical conductivity, together delivering a thermoelectric figure of merit ZT three times higher than that of the pristine Bi(2)Se(3) nanoplates at 575 K. Our study demonstrates a unique epitaxy mode enabled by the 2D nanocrystal soft template via an affordable and scalable solution chemistry approach. It opens up new opportunities for the creation of diverse epitaxial heterostructures with highly disparate structures and functions.
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spelling pubmed-50553882016-10-11 Scalable solution-phase epitaxial growth of symmetry-mismatched heterostructures on two-dimensional crystal soft template Lin, Zhaoyang Yin, Anxiang Mao, Jun Xia, Yi Kempf, Nicholas He, Qiyuan Wang, Yiliu Chen, Chih-Yen Zhang, Yanliang Ozolins, Vidvuds Ren, Zhifeng Huang, Yu Duan, Xiangfeng Sci Adv Research Articles Epitaxial heterostructures with precisely controlled composition and electronic modulation are of central importance for electronics, optoelectronics, thermoelectrics, and catalysis. In general, epitaxial material growth requires identical or nearly identical crystal structures with small misfit in lattice symmetry and parameters and is typically achieved by vapor-phase depositions in vacuum. We report a scalable solution-phase growth of symmetry-mismatched PbSe/Bi(2)Se(3) epitaxial heterostructures by using two-dimensional (2D) Bi(2)Se(3) nanoplates as soft templates. The dangling bond–free surface of 2D Bi(2)Se(3) nanoplates guides the growth of PbSe crystal without requiring a one-to-one match in the atomic structure, which exerts minimal restriction on the epitaxial layer. With a layered structure and weak van der Waals interlayer interaction, the interface layer in the 2D Bi(2)Se(3) nanoplates can deform to accommodate incoming layer, thus functioning as a soft template for symmetry-mismatched epitaxial growth of cubic PbSe crystal on rhombohedral Bi(2)Se(3) nanoplates. We show that a solution chemistry approach can be readily used for the synthesis of gram-scale PbSe/Bi(2)Se(3) epitaxial heterostructures, in which the square PbSe (001) layer forms on the trigonal/hexagonal (0001) plane of Bi(2)Se(3) nanoplates. We further show that the resulted PbSe/Bi(2)Se(3) heterostructures can be readily processed into bulk pellet with considerably suppressed thermal conductivity (0.30 W/m·K at room temperature) while retaining respectable electrical conductivity, together delivering a thermoelectric figure of merit ZT three times higher than that of the pristine Bi(2)Se(3) nanoplates at 575 K. Our study demonstrates a unique epitaxy mode enabled by the 2D nanocrystal soft template via an affordable and scalable solution chemistry approach. It opens up new opportunities for the creation of diverse epitaxial heterostructures with highly disparate structures and functions. American Association for the Advancement of Science 2016-10-07 /pmc/articles/PMC5055388/ /pubmed/27730211 http://dx.doi.org/10.1126/sciadv.1600993 Text en Copyright © 2016, The Authors http://creativecommons.org/licenses/by-nc/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCommercial license (http://creativecommons.org/licenses/by-nc/4.0/) , which permits use, distribution, and reproduction in any medium, so long as the resultant use is not for commercial advantage and provided the original work is properly cited.
spellingShingle Research Articles
Lin, Zhaoyang
Yin, Anxiang
Mao, Jun
Xia, Yi
Kempf, Nicholas
He, Qiyuan
Wang, Yiliu
Chen, Chih-Yen
Zhang, Yanliang
Ozolins, Vidvuds
Ren, Zhifeng
Huang, Yu
Duan, Xiangfeng
Scalable solution-phase epitaxial growth of symmetry-mismatched heterostructures on two-dimensional crystal soft template
title Scalable solution-phase epitaxial growth of symmetry-mismatched heterostructures on two-dimensional crystal soft template
title_full Scalable solution-phase epitaxial growth of symmetry-mismatched heterostructures on two-dimensional crystal soft template
title_fullStr Scalable solution-phase epitaxial growth of symmetry-mismatched heterostructures on two-dimensional crystal soft template
title_full_unstemmed Scalable solution-phase epitaxial growth of symmetry-mismatched heterostructures on two-dimensional crystal soft template
title_short Scalable solution-phase epitaxial growth of symmetry-mismatched heterostructures on two-dimensional crystal soft template
title_sort scalable solution-phase epitaxial growth of symmetry-mismatched heterostructures on two-dimensional crystal soft template
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5055388/
https://www.ncbi.nlm.nih.gov/pubmed/27730211
http://dx.doi.org/10.1126/sciadv.1600993
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