Cargando…

Edge Defect-Free Anisotropic Two-Dimensional Sheets with Nearly Direct Band Gaps from a True One-Dimensional Van der Waals Nb(2)Se(9) Material

[Image: see text] Dangling-bond-free two-dimensional (2D) materials can be isolated from the bulk structures of one-dimensional (1D) van der Waals materials to produce edge-defect-free 2D materials. Conventional 2D materials have dangling bonds on their edges, which act as scattering centers that de...

Descripción completa

Detalles Bibliográficos
Autores principales: Lee, Weon-Gyu, Chung, You Kyoung, Lee, Junho, Kim, Bum Jun, Chae, Sudong, Jeong, Byung Joo, Choi, Jae-Young, Huh, Joonsuk
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7240825/
https://www.ncbi.nlm.nih.gov/pubmed/32455200
http://dx.doi.org/10.1021/acsomega.0c00388
_version_ 1783536964972052480
author Lee, Weon-Gyu
Chung, You Kyoung
Lee, Junho
Kim, Bum Jun
Chae, Sudong
Jeong, Byung Joo
Choi, Jae-Young
Huh, Joonsuk
author_facet Lee, Weon-Gyu
Chung, You Kyoung
Lee, Junho
Kim, Bum Jun
Chae, Sudong
Jeong, Byung Joo
Choi, Jae-Young
Huh, Joonsuk
author_sort Lee, Weon-Gyu
collection PubMed
description [Image: see text] Dangling-bond-free two-dimensional (2D) materials can be isolated from the bulk structures of one-dimensional (1D) van der Waals materials to produce edge-defect-free 2D materials. Conventional 2D materials have dangling bonds on their edges, which act as scattering centers that deteriorate the transport properties of carriers. Highly anisotropic 2D sheets, made of 1D van der Waals Nb(2)Se(9) material, have three planar structures depending on the cutting direction of the bulk Nb(2)Se(9) crystal. To investigate the applications of these 2D Nb(2)Se(9) sheets, we calculated the band structures of the three planar sheets and observed that two sheets had nearly direct band gaps, which were only slightly greater (0.01 eV) than the indirect band gaps. These energy differences were smaller than the thermal energy at room temperature. The 2D Nb(2)Se(9) plane with an indirect band gap had the shortest interchain distance for selenium ions among the three planes and exhibited significant interchain interactions on the conduction band. The interchain strain induced an indirect-to-direct band gap transition in the 2D Nb(2)Se(9) sheets. These 2D sheets of Nb(2)Se(9) with direct band gaps also had different band structures because of different interactions between chains, implying that they can have different charge mobilities. We expect these dangling-bond-free 2D Nb(2)Se(9) sheets to be applied in optoelectronic devices because they allow for nearly direct band gaps. They can also be used in mechanical sensors because the band gaps can be controlled by varying the interchain strain.
format Online
Article
Text
id pubmed-7240825
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-72408252020-05-22 Edge Defect-Free Anisotropic Two-Dimensional Sheets with Nearly Direct Band Gaps from a True One-Dimensional Van der Waals Nb(2)Se(9) Material Lee, Weon-Gyu Chung, You Kyoung Lee, Junho Kim, Bum Jun Chae, Sudong Jeong, Byung Joo Choi, Jae-Young Huh, Joonsuk ACS Omega [Image: see text] Dangling-bond-free two-dimensional (2D) materials can be isolated from the bulk structures of one-dimensional (1D) van der Waals materials to produce edge-defect-free 2D materials. Conventional 2D materials have dangling bonds on their edges, which act as scattering centers that deteriorate the transport properties of carriers. Highly anisotropic 2D sheets, made of 1D van der Waals Nb(2)Se(9) material, have three planar structures depending on the cutting direction of the bulk Nb(2)Se(9) crystal. To investigate the applications of these 2D Nb(2)Se(9) sheets, we calculated the band structures of the three planar sheets and observed that two sheets had nearly direct band gaps, which were only slightly greater (0.01 eV) than the indirect band gaps. These energy differences were smaller than the thermal energy at room temperature. The 2D Nb(2)Se(9) plane with an indirect band gap had the shortest interchain distance for selenium ions among the three planes and exhibited significant interchain interactions on the conduction band. The interchain strain induced an indirect-to-direct band gap transition in the 2D Nb(2)Se(9) sheets. These 2D sheets of Nb(2)Se(9) with direct band gaps also had different band structures because of different interactions between chains, implying that they can have different charge mobilities. We expect these dangling-bond-free 2D Nb(2)Se(9) sheets to be applied in optoelectronic devices because they allow for nearly direct band gaps. They can also be used in mechanical sensors because the band gaps can be controlled by varying the interchain strain. American Chemical Society 2020-05-06 /pmc/articles/PMC7240825/ /pubmed/32455200 http://dx.doi.org/10.1021/acsomega.0c00388 Text en Copyright © 2020 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Lee, Weon-Gyu
Chung, You Kyoung
Lee, Junho
Kim, Bum Jun
Chae, Sudong
Jeong, Byung Joo
Choi, Jae-Young
Huh, Joonsuk
Edge Defect-Free Anisotropic Two-Dimensional Sheets with Nearly Direct Band Gaps from a True One-Dimensional Van der Waals Nb(2)Se(9) Material
title Edge Defect-Free Anisotropic Two-Dimensional Sheets with Nearly Direct Band Gaps from a True One-Dimensional Van der Waals Nb(2)Se(9) Material
title_full Edge Defect-Free Anisotropic Two-Dimensional Sheets with Nearly Direct Band Gaps from a True One-Dimensional Van der Waals Nb(2)Se(9) Material
title_fullStr Edge Defect-Free Anisotropic Two-Dimensional Sheets with Nearly Direct Band Gaps from a True One-Dimensional Van der Waals Nb(2)Se(9) Material
title_full_unstemmed Edge Defect-Free Anisotropic Two-Dimensional Sheets with Nearly Direct Band Gaps from a True One-Dimensional Van der Waals Nb(2)Se(9) Material
title_short Edge Defect-Free Anisotropic Two-Dimensional Sheets with Nearly Direct Band Gaps from a True One-Dimensional Van der Waals Nb(2)Se(9) Material
title_sort edge defect-free anisotropic two-dimensional sheets with nearly direct band gaps from a true one-dimensional van der waals nb(2)se(9) material
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7240825/
https://www.ncbi.nlm.nih.gov/pubmed/32455200
http://dx.doi.org/10.1021/acsomega.0c00388
work_keys_str_mv AT leeweongyu edgedefectfreeanisotropictwodimensionalsheetswithnearlydirectbandgapsfromatrueonedimensionalvanderwaalsnb2se9material
AT chungyoukyoung edgedefectfreeanisotropictwodimensionalsheetswithnearlydirectbandgapsfromatrueonedimensionalvanderwaalsnb2se9material
AT leejunho edgedefectfreeanisotropictwodimensionalsheetswithnearlydirectbandgapsfromatrueonedimensionalvanderwaalsnb2se9material
AT kimbumjun edgedefectfreeanisotropictwodimensionalsheetswithnearlydirectbandgapsfromatrueonedimensionalvanderwaalsnb2se9material
AT chaesudong edgedefectfreeanisotropictwodimensionalsheetswithnearlydirectbandgapsfromatrueonedimensionalvanderwaalsnb2se9material
AT jeongbyungjoo edgedefectfreeanisotropictwodimensionalsheetswithnearlydirectbandgapsfromatrueonedimensionalvanderwaalsnb2se9material
AT choijaeyoung edgedefectfreeanisotropictwodimensionalsheetswithnearlydirectbandgapsfromatrueonedimensionalvanderwaalsnb2se9material
AT huhjoonsuk edgedefectfreeanisotropictwodimensionalsheetswithnearlydirectbandgapsfromatrueonedimensionalvanderwaalsnb2se9material