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A First-Principles Study on the Electronic, Thermodynamic and Dielectric Properties of Monolayer Ca(OH)(2) and Mg(OH)(2)

We perform first-principles calculations to explore the electronic, thermodynamic and dielectric properties of two-dimensional (2D) layered, alkaline-earth hydroxides Ca(OH) [Formula: see text] and Mg(OH) [Formula: see text]. We calculate the lattice parameters, exfoliation energies and phonon spect...

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Autores principales: Rostami Osanloo, Mehrdad, Oyekan, Kolade A., Vandenberghe, William G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9147085/
https://www.ncbi.nlm.nih.gov/pubmed/35630994
http://dx.doi.org/10.3390/nano12101774
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author Rostami Osanloo, Mehrdad
Oyekan, Kolade A.
Vandenberghe, William G.
author_facet Rostami Osanloo, Mehrdad
Oyekan, Kolade A.
Vandenberghe, William G.
author_sort Rostami Osanloo, Mehrdad
collection PubMed
description We perform first-principles calculations to explore the electronic, thermodynamic and dielectric properties of two-dimensional (2D) layered, alkaline-earth hydroxides Ca(OH) [Formula: see text] and Mg(OH) [Formula: see text]. We calculate the lattice parameters, exfoliation energies and phonon spectra of monolayers and also investigate the thermal properties of these monolayers, such as the Helmholtz free energy, heat capacity at constant volume and entropy as a function of temperature. We employ Density Functional Perturbation Theory (DFPT) to calculate the in-plane and out-of-plane static dielectric constant of the bulk and monolayer samples. We compute the bandgap and electron affinity values using the HSE06 functional and estimate the leakage current density of transistors with monolayer Ca(OH) [Formula: see text] and Mg(OH) [Formula: see text] as dielectrics when combined with HfS [Formula: see text] and WS [Formula: see text] , respectively. Our results show that bilayer Mg(OH) [Formula: see text] (EOT∼0.60 nm) with a lower solubility in water offers higher out-of-plane dielectric constants and lower leakage currents than does bilayer Ca(OH) [Formula: see text] (EOT∼0.56 nm). Additionally, the out-of-plane dielectric constant, leakage current and EOT of Mg(OH) [Formula: see text] outperform bilayer h-BN. We verify the applicability of Anderson’s rule and conclude that bilayers of Ca(OH) [Formula: see text] and Mg(OH) [Formula: see text] , respectively, paired with lattice-matched monolayer HfS [Formula: see text] and WS [Formula: see text] , are effective structural combinations that could lead to the development of innovative multi-functional Field Effect Transistors (FETs).
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spelling pubmed-91470852022-05-29 A First-Principles Study on the Electronic, Thermodynamic and Dielectric Properties of Monolayer Ca(OH)(2) and Mg(OH)(2) Rostami Osanloo, Mehrdad Oyekan, Kolade A. Vandenberghe, William G. Nanomaterials (Basel) Article We perform first-principles calculations to explore the electronic, thermodynamic and dielectric properties of two-dimensional (2D) layered, alkaline-earth hydroxides Ca(OH) [Formula: see text] and Mg(OH) [Formula: see text]. We calculate the lattice parameters, exfoliation energies and phonon spectra of monolayers and also investigate the thermal properties of these monolayers, such as the Helmholtz free energy, heat capacity at constant volume and entropy as a function of temperature. We employ Density Functional Perturbation Theory (DFPT) to calculate the in-plane and out-of-plane static dielectric constant of the bulk and monolayer samples. We compute the bandgap and electron affinity values using the HSE06 functional and estimate the leakage current density of transistors with monolayer Ca(OH) [Formula: see text] and Mg(OH) [Formula: see text] as dielectrics when combined with HfS [Formula: see text] and WS [Formula: see text] , respectively. Our results show that bilayer Mg(OH) [Formula: see text] (EOT∼0.60 nm) with a lower solubility in water offers higher out-of-plane dielectric constants and lower leakage currents than does bilayer Ca(OH) [Formula: see text] (EOT∼0.56 nm). Additionally, the out-of-plane dielectric constant, leakage current and EOT of Mg(OH) [Formula: see text] outperform bilayer h-BN. We verify the applicability of Anderson’s rule and conclude that bilayers of Ca(OH) [Formula: see text] and Mg(OH) [Formula: see text] , respectively, paired with lattice-matched monolayer HfS [Formula: see text] and WS [Formula: see text] , are effective structural combinations that could lead to the development of innovative multi-functional Field Effect Transistors (FETs). MDPI 2022-05-23 /pmc/articles/PMC9147085/ /pubmed/35630994 http://dx.doi.org/10.3390/nano12101774 Text en © 2022 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
Rostami Osanloo, Mehrdad
Oyekan, Kolade A.
Vandenberghe, William G.
A First-Principles Study on the Electronic, Thermodynamic and Dielectric Properties of Monolayer Ca(OH)(2) and Mg(OH)(2)
title A First-Principles Study on the Electronic, Thermodynamic and Dielectric Properties of Monolayer Ca(OH)(2) and Mg(OH)(2)
title_full A First-Principles Study on the Electronic, Thermodynamic and Dielectric Properties of Monolayer Ca(OH)(2) and Mg(OH)(2)
title_fullStr A First-Principles Study on the Electronic, Thermodynamic and Dielectric Properties of Monolayer Ca(OH)(2) and Mg(OH)(2)
title_full_unstemmed A First-Principles Study on the Electronic, Thermodynamic and Dielectric Properties of Monolayer Ca(OH)(2) and Mg(OH)(2)
title_short A First-Principles Study on the Electronic, Thermodynamic and Dielectric Properties of Monolayer Ca(OH)(2) and Mg(OH)(2)
title_sort first-principles study on the electronic, thermodynamic and dielectric properties of monolayer ca(oh)(2) and mg(oh)(2)
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9147085/
https://www.ncbi.nlm.nih.gov/pubmed/35630994
http://dx.doi.org/10.3390/nano12101774
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