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Engineering the band gap and optical properties of a two-dimensional molybdenum carbon fluoride MXene

Using first-principles density functional theory, we investigated the electronic and optical properties of monolayer and multilayer nanosheets of molybdenum carbon fluoride (Mo(2)CF(2)), a two-dimensional (2D) transition-metal carbide MXene. The indirect band gap of the Mo(2)CF(2) semiconductor can...

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Autores principales: Anh, Doan Thi Kieu, Mui, Luong Viet, Minh, Pham Hong, Binh, Nguyen Thanh, Cadatal-Raduban, Marilou
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Union of Crystallography 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9533315/
http://dx.doi.org/10.1107/S2052520622007387
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author Anh, Doan Thi Kieu
Mui, Luong Viet
Minh, Pham Hong
Binh, Nguyen Thanh
Cadatal-Raduban, Marilou
author_facet Anh, Doan Thi Kieu
Mui, Luong Viet
Minh, Pham Hong
Binh, Nguyen Thanh
Cadatal-Raduban, Marilou
author_sort Anh, Doan Thi Kieu
collection PubMed
description Using first-principles density functional theory, we investigated the electronic and optical properties of monolayer and multilayer nanosheets of molybdenum carbon fluoride (Mo(2)CF(2)), a two-dimensional (2D) transition-metal carbide MXene. The indirect band gap of the Mo(2)CF(2) semiconductor can be engineered by controlling the number of layers where the band gap energy changes from 0.278 eV for the monolayer to 0.249 eV for the trilayer nanosheet. The decrease in band gap energy in the multilayer is due to inter­layer coupling, which splits the bands according to the number of layers. Mo(2)CF(2) behaves as a metal with an anomalous dispersion and high optical conductivity at incident photon energies of 0.68–2.19, 3.49–6.68 and 7.30–8.31 eV. It has a relatively low reflectivity and is absorbing over a broad range of photon energies from about 0.429 (2890), 0.387 (3204) and 0.345 eV (3594 nm) for the monolayer, bilayer and trilayer nanosheets, respectively, achieving peak absorption in the vacuum ultraviolet region at about 7.9 eV (157 nm). The optical properties of Mo(2)CF(2) can likewise be tuned by varying the number of layers. The unique behavior of its optical properties along with the ability to control its electronic and optical properties enhances the potential of 2D Mo(2)CF(2) for various applications in the fields of electronics and energy storage.
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spelling pubmed-95333152022-10-13 Engineering the band gap and optical properties of a two-dimensional molybdenum carbon fluoride MXene Anh, Doan Thi Kieu Mui, Luong Viet Minh, Pham Hong Binh, Nguyen Thanh Cadatal-Raduban, Marilou Acta Crystallogr B Struct Sci Cryst Eng Mater Research Papers Using first-principles density functional theory, we investigated the electronic and optical properties of monolayer and multilayer nanosheets of molybdenum carbon fluoride (Mo(2)CF(2)), a two-dimensional (2D) transition-metal carbide MXene. The indirect band gap of the Mo(2)CF(2) semiconductor can be engineered by controlling the number of layers where the band gap energy changes from 0.278 eV for the monolayer to 0.249 eV for the trilayer nanosheet. The decrease in band gap energy in the multilayer is due to inter­layer coupling, which splits the bands according to the number of layers. Mo(2)CF(2) behaves as a metal with an anomalous dispersion and high optical conductivity at incident photon energies of 0.68–2.19, 3.49–6.68 and 7.30–8.31 eV. It has a relatively low reflectivity and is absorbing over a broad range of photon energies from about 0.429 (2890), 0.387 (3204) and 0.345 eV (3594 nm) for the monolayer, bilayer and trilayer nanosheets, respectively, achieving peak absorption in the vacuum ultraviolet region at about 7.9 eV (157 nm). The optical properties of Mo(2)CF(2) can likewise be tuned by varying the number of layers. The unique behavior of its optical properties along with the ability to control its electronic and optical properties enhances the potential of 2D Mo(2)CF(2) for various applications in the fields of electronics and energy storage. International Union of Crystallography 2022-08-16 /pmc/articles/PMC9533315/ http://dx.doi.org/10.1107/S2052520622007387 Text en © Doan Thi Kieu Anh et al. 2022 https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution (CC-BY) Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.
spellingShingle Research Papers
Anh, Doan Thi Kieu
Mui, Luong Viet
Minh, Pham Hong
Binh, Nguyen Thanh
Cadatal-Raduban, Marilou
Engineering the band gap and optical properties of a two-dimensional molybdenum carbon fluoride MXene
title Engineering the band gap and optical properties of a two-dimensional molybdenum carbon fluoride MXene
title_full Engineering the band gap and optical properties of a two-dimensional molybdenum carbon fluoride MXene
title_fullStr Engineering the band gap and optical properties of a two-dimensional molybdenum carbon fluoride MXene
title_full_unstemmed Engineering the band gap and optical properties of a two-dimensional molybdenum carbon fluoride MXene
title_short Engineering the band gap and optical properties of a two-dimensional molybdenum carbon fluoride MXene
title_sort engineering the band gap and optical properties of a two-dimensional molybdenum carbon fluoride mxene
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9533315/
http://dx.doi.org/10.1107/S2052520622007387
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