Tunable Negative Poisson’s Ratio in Van der Waals Superlattice
Negative Poisson’s ratio (NPR) materials are functional and mechanical metamaterials that shrink (expand) longitudinally after being compressed (stretched) laterally. By using first-principles calculations, we found that Poisson’s ratio can be tuned from near zero to negative by different stacking m...
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doaj-4e13f1bd272d40ba8dcdcf4820eb2a022021-04-19T16:35:51ZengAmerican Association for the Advancement of ScienceResearch2639-52742021-01-01202110.34133/2021/1904839Tunable Negative Poisson’s Ratio in Van der Waals SuperlatticeXiaowen Li0Xiaobin Qiang1Zhenhao Gong2Yubo Zhang3Penglai Gong4Lang Chen5Department of Physics,Southern University of Science and Technology,Shenzhen,Guangdong 518055,ChinaDepartment of Physics,Southern University of Science and Technology,Shenzhen,Guangdong 518055,ChinaDepartment of Physics,Southern University of Science and Technology,Shenzhen,Guangdong 518055,ChinaDepartment of Physics,Southern University of Science and Technology,Shenzhen,Guangdong 518055,ChinaDepartment of Physics,Southern University of Science and Technology,Shenzhen,Guangdong 518055,ChinaDepartment of Physics,Southern University of Science and Technology,Shenzhen,Guangdong 518055,ChinaNegative Poisson’s ratio (NPR) materials are functional and mechanical metamaterials that shrink (expand) longitudinally after being compressed (stretched) laterally. By using first-principles calculations, we found that Poisson’s ratio can be tuned from near zero to negative by different stacking modes in van der Waals (vdW) graphene/hexagonal boron nitride (G/h-BN) superlattice. We attribute the NPR effect to the interaction of pz orbitals between the interfacial layers. Furthermore, a parameter calculated by analyzing the electronic band structure, namely, distance-dependent hopping integral, is used to describe the intensity of this interaction. We believe that this mechanism is not only applicable to G/h-BN superlattice but can also explain and predict the NPR effect in other vdW layered superlattices. Therefore, the NPR phenomenon, which was relatively rare in 3D and 2D materials, can be realized in the vdW superlattices by different stacking orders. The combinations of tunable NPRs with the excellent electrical/optical properties of 2D vdW superlattices will pave a novel avenue to a wide range of multifunctional applications.http://dx.doi.org/10.34133/2021/1904839 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Xiaowen Li Xiaobin Qiang Zhenhao Gong Yubo Zhang Penglai Gong Lang Chen |
spellingShingle |
Xiaowen Li Xiaobin Qiang Zhenhao Gong Yubo Zhang Penglai Gong Lang Chen Tunable Negative Poisson’s Ratio in Van der Waals Superlattice Research |
author_facet |
Xiaowen Li Xiaobin Qiang Zhenhao Gong Yubo Zhang Penglai Gong Lang Chen |
author_sort |
Xiaowen Li |
title |
Tunable Negative Poisson’s Ratio in Van der Waals Superlattice |
title_short |
Tunable Negative Poisson’s Ratio in Van der Waals Superlattice |
title_full |
Tunable Negative Poisson’s Ratio in Van der Waals Superlattice |
title_fullStr |
Tunable Negative Poisson’s Ratio in Van der Waals Superlattice |
title_full_unstemmed |
Tunable Negative Poisson’s Ratio in Van der Waals Superlattice |
title_sort |
tunable negative poisson’s ratio in van der waals superlattice |
publisher |
American Association for the Advancement of Science |
series |
Research |
issn |
2639-5274 |
publishDate |
2021-01-01 |
description |
Negative Poisson’s ratio (NPR) materials are functional and mechanical metamaterials that shrink (expand) longitudinally after being compressed (stretched) laterally. By using first-principles calculations, we found that Poisson’s ratio can be tuned from near zero to negative by different stacking modes in van der Waals (vdW) graphene/hexagonal boron nitride (G/h-BN) superlattice. We attribute the NPR effect to the interaction of pz orbitals between the interfacial layers. Furthermore, a parameter calculated by analyzing the electronic band structure, namely, distance-dependent hopping integral, is used to describe the intensity of this interaction. We believe that this mechanism is not only applicable to G/h-BN superlattice but can also explain and predict the NPR effect in other vdW layered superlattices. Therefore, the NPR phenomenon, which was relatively rare in 3D and 2D materials, can be realized in the vdW superlattices by different stacking orders. The combinations of tunable NPRs with the excellent electrical/optical properties of 2D vdW superlattices will pave a novel avenue to a wide range of multifunctional applications. |
url |
http://dx.doi.org/10.34133/2021/1904839 |
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