Study of Electronic Structure, Thermal Conductivity, Elastic and Optical Properties of α, β, γ-Graphyne

In recent years, graphyne was found to be the only 2D carbon material that has both sp and sp2 hybridization. It has received significant attention because of its great potential in the field of optoelectronics, which arises due to its small band gap. In this study, the structural stability, electro...

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Main Authors: Xun Hou, Zhongjing Xie, Chunmei Li, Guannan Li, Zhiqian Chen
Format: Article
Language:English
Published: MDPI AG 2018-01-01
Series:Materials
Subjects:
Online Access:http://www.mdpi.com/1996-1944/11/2/188
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spelling doaj-c9c5650c02ab4bd3a0dba042de3362b52020-11-25T01:06:50ZengMDPI AGMaterials1996-19442018-01-0111218810.3390/ma11020188ma11020188Study of Electronic Structure, Thermal Conductivity, Elastic and Optical Properties of α, β, γ-GraphyneXun Hou0Zhongjing Xie1Chunmei Li2Guannan Li3Zhiqian Chen4Faculty of Materials and Energy, Southwest University, Chongqing 400715, ChinaFaculty of Materials and Energy, Southwest University, Chongqing 400715, ChinaFaculty of Materials and Energy, Southwest University, Chongqing 400715, ChinaFaculty of Materials and Energy, Southwest University, Chongqing 400715, ChinaFaculty of Materials and Energy, Southwest University, Chongqing 400715, ChinaIn recent years, graphyne was found to be the only 2D carbon material that has both sp and sp2 hybridization. It has received significant attention because of its great potential in the field of optoelectronics, which arises due to its small band gap. In this study, the structural stability, electronic structure, elasticity, thermal conductivity and optical properties of α, β, γ-graphynes were investigated using density functional theory (DFT) systematically. γ-graphyne has the largest negative cohesive energy and thus the most stable structure, while the β-graphyne comes 2nd. Both β and γ-graphynes have sp-sp, sp-sp2 and sp2-sp2 hybridization bonds, of which γ-graphyne has shorter bond lengths and thus larger Young’s modulus. Due to the difference in acetylenic bond in the structure cell, the effect of strain on the electronic structure varies between graphynes: α-graphyne has no band gap and is insensitive to strain; β-graphyne’s band gap has a sharp up-turn at 10% strain, while γ-graphyne’s band gap goes up linearly with the strain. All the three graphynes exhibit large free carrier concentration and these free carriers have small effective mass, and both free carrier absorption and intrinsic absorption are found in the light absorption. Based on the effect of strain, optical properties of three structures are also analyzed. It is found that the strain has significant impacts on their optical properties. In summary, band gap, thermal conductivity, elasticity and optical properties of graphyne could all be tailored with adjustment on the amount of acetylenic bonds in the structure cell.http://www.mdpi.com/1996-1944/11/2/188graphyneelectronic structureselasticityoptical properties
collection DOAJ
language English
format Article
sources DOAJ
author Xun Hou
Zhongjing Xie
Chunmei Li
Guannan Li
Zhiqian Chen
spellingShingle Xun Hou
Zhongjing Xie
Chunmei Li
Guannan Li
Zhiqian Chen
Study of Electronic Structure, Thermal Conductivity, Elastic and Optical Properties of α, β, γ-Graphyne
Materials
graphyne
electronic structures
elasticity
optical properties
author_facet Xun Hou
Zhongjing Xie
Chunmei Li
Guannan Li
Zhiqian Chen
author_sort Xun Hou
title Study of Electronic Structure, Thermal Conductivity, Elastic and Optical Properties of α, β, γ-Graphyne
title_short Study of Electronic Structure, Thermal Conductivity, Elastic and Optical Properties of α, β, γ-Graphyne
title_full Study of Electronic Structure, Thermal Conductivity, Elastic and Optical Properties of α, β, γ-Graphyne
title_fullStr Study of Electronic Structure, Thermal Conductivity, Elastic and Optical Properties of α, β, γ-Graphyne
title_full_unstemmed Study of Electronic Structure, Thermal Conductivity, Elastic and Optical Properties of α, β, γ-Graphyne
title_sort study of electronic structure, thermal conductivity, elastic and optical properties of α, β, γ-graphyne
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2018-01-01
description In recent years, graphyne was found to be the only 2D carbon material that has both sp and sp2 hybridization. It has received significant attention because of its great potential in the field of optoelectronics, which arises due to its small band gap. In this study, the structural stability, electronic structure, elasticity, thermal conductivity and optical properties of α, β, γ-graphynes were investigated using density functional theory (DFT) systematically. γ-graphyne has the largest negative cohesive energy and thus the most stable structure, while the β-graphyne comes 2nd. Both β and γ-graphynes have sp-sp, sp-sp2 and sp2-sp2 hybridization bonds, of which γ-graphyne has shorter bond lengths and thus larger Young’s modulus. Due to the difference in acetylenic bond in the structure cell, the effect of strain on the electronic structure varies between graphynes: α-graphyne has no band gap and is insensitive to strain; β-graphyne’s band gap has a sharp up-turn at 10% strain, while γ-graphyne’s band gap goes up linearly with the strain. All the three graphynes exhibit large free carrier concentration and these free carriers have small effective mass, and both free carrier absorption and intrinsic absorption are found in the light absorption. Based on the effect of strain, optical properties of three structures are also analyzed. It is found that the strain has significant impacts on their optical properties. In summary, band gap, thermal conductivity, elasticity and optical properties of graphyne could all be tailored with adjustment on the amount of acetylenic bonds in the structure cell.
topic graphyne
electronic structures
elasticity
optical properties
url http://www.mdpi.com/1996-1944/11/2/188
work_keys_str_mv AT xunhou studyofelectronicstructurethermalconductivityelasticandopticalpropertiesofabggraphyne
AT zhongjingxie studyofelectronicstructurethermalconductivityelasticandopticalpropertiesofabggraphyne
AT chunmeili studyofelectronicstructurethermalconductivityelasticandopticalpropertiesofabggraphyne
AT guannanli studyofelectronicstructurethermalconductivityelasticandopticalpropertiesofabggraphyne
AT zhiqianchen studyofelectronicstructurethermalconductivityelasticandopticalpropertiesofabggraphyne
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