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The Combined Effects of an External Field and Novel Functional Groups on the Structural and Electronic Properties of TMDs/Ti(3)C(2) Heterostructures: A First-Principles Study

The stacking of Ti(3)C(2) with transition metal dihalide (TMDs) materials is an effective strategy to improve the physical properties of a single material, and the tuning of the related properties of these TMDs/Ti(3)C(2) heterostructures is also an important scientific problem. In this work, we syst...

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Detalles Bibliográficos
Autores principales: Zheng, Siyu, Li, Chenliang, Wang, Chaoying, Ma, Decai, Wang, Baolai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10097373/
https://www.ncbi.nlm.nih.gov/pubmed/37049310
http://dx.doi.org/10.3390/nano13071218
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author Zheng, Siyu
Li, Chenliang
Wang, Chaoying
Ma, Decai
Wang, Baolai
author_facet Zheng, Siyu
Li, Chenliang
Wang, Chaoying
Ma, Decai
Wang, Baolai
author_sort Zheng, Siyu
collection PubMed
description The stacking of Ti(3)C(2) with transition metal dihalide (TMDs) materials is an effective strategy to improve the physical properties of a single material, and the tuning of the related properties of these TMDs/Ti(3)C(2) heterostructures is also an important scientific problem. In this work, we systematically investigated the effects of an external field and novel functional groups (S, Se, Cl, Br) on the structural and electronic properties of TMDs/Ti(3)C(2)X(2) heterostructures. The results revealed that the lattice parameters and interlayer distance of TMDs/Ti(3)C(2) increased with the addition of functional groups. Both tensile and compressive strain obviously increased the interlayer distance of MoS(2)/Ti(3)C(2)X(2) (X = S, Se, Cl, Br) and MoSe(2)/Ti(3)C(2)X(2) (X = Se, Br). In contrast, the interlayer distance of MoSe(2)/Ti(3)C(2)X(2) (X = S, Cl) decreased with increasing compressive strain. Furthermore, the conductivity of TMDs/Ti(3)C(2) increased due to the addition of functional groups (Cl, Br). Strain caused the bandgap of TMDs to narrow, and effectively adjusted the electronic properties of TMDs/Ti(3)C(2)X(2). At 9% compressive strain, the conductivity of MoSe(2)/Ti(3)C(2)Cl(2) increased significantly. Meanwhile, for TMDs/Ti(3)C(2)X(2), the conduction band edge (CBE) and valence band edge (VBE) at the M and K points changed linearly under an electric field. This study provides valuable insight into the combined effects of an external field and novel functional groups on the related properties of TMDs/Ti(3)C(2)X(2).
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spelling pubmed-100973732023-04-13 The Combined Effects of an External Field and Novel Functional Groups on the Structural and Electronic Properties of TMDs/Ti(3)C(2) Heterostructures: A First-Principles Study Zheng, Siyu Li, Chenliang Wang, Chaoying Ma, Decai Wang, Baolai Nanomaterials (Basel) Article The stacking of Ti(3)C(2) with transition metal dihalide (TMDs) materials is an effective strategy to improve the physical properties of a single material, and the tuning of the related properties of these TMDs/Ti(3)C(2) heterostructures is also an important scientific problem. In this work, we systematically investigated the effects of an external field and novel functional groups (S, Se, Cl, Br) on the structural and electronic properties of TMDs/Ti(3)C(2)X(2) heterostructures. The results revealed that the lattice parameters and interlayer distance of TMDs/Ti(3)C(2) increased with the addition of functional groups. Both tensile and compressive strain obviously increased the interlayer distance of MoS(2)/Ti(3)C(2)X(2) (X = S, Se, Cl, Br) and MoSe(2)/Ti(3)C(2)X(2) (X = Se, Br). In contrast, the interlayer distance of MoSe(2)/Ti(3)C(2)X(2) (X = S, Cl) decreased with increasing compressive strain. Furthermore, the conductivity of TMDs/Ti(3)C(2) increased due to the addition of functional groups (Cl, Br). Strain caused the bandgap of TMDs to narrow, and effectively adjusted the electronic properties of TMDs/Ti(3)C(2)X(2). At 9% compressive strain, the conductivity of MoSe(2)/Ti(3)C(2)Cl(2) increased significantly. Meanwhile, for TMDs/Ti(3)C(2)X(2), the conduction band edge (CBE) and valence band edge (VBE) at the M and K points changed linearly under an electric field. This study provides valuable insight into the combined effects of an external field and novel functional groups on the related properties of TMDs/Ti(3)C(2)X(2). MDPI 2023-03-29 /pmc/articles/PMC10097373/ /pubmed/37049310 http://dx.doi.org/10.3390/nano13071218 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zheng, Siyu
Li, Chenliang
Wang, Chaoying
Ma, Decai
Wang, Baolai
The Combined Effects of an External Field and Novel Functional Groups on the Structural and Electronic Properties of TMDs/Ti(3)C(2) Heterostructures: A First-Principles Study
title The Combined Effects of an External Field and Novel Functional Groups on the Structural and Electronic Properties of TMDs/Ti(3)C(2) Heterostructures: A First-Principles Study
title_full The Combined Effects of an External Field and Novel Functional Groups on the Structural and Electronic Properties of TMDs/Ti(3)C(2) Heterostructures: A First-Principles Study
title_fullStr The Combined Effects of an External Field and Novel Functional Groups on the Structural and Electronic Properties of TMDs/Ti(3)C(2) Heterostructures: A First-Principles Study
title_full_unstemmed The Combined Effects of an External Field and Novel Functional Groups on the Structural and Electronic Properties of TMDs/Ti(3)C(2) Heterostructures: A First-Principles Study
title_short The Combined Effects of an External Field and Novel Functional Groups on the Structural and Electronic Properties of TMDs/Ti(3)C(2) Heterostructures: A First-Principles Study
title_sort combined effects of an external field and novel functional groups on the structural and electronic properties of tmds/ti(3)c(2) heterostructures: a first-principles study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10097373/
https://www.ncbi.nlm.nih.gov/pubmed/37049310
http://dx.doi.org/10.3390/nano13071218
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