Quantum capacitive response of 2D aluminium under GW approximation

The quantum capacitive response of 2D aluminum was calculated using GW approximations. Density functional theory revealed that its lattice constant was 4.41 Å… with a bond distance of 2.55 Å…. Calculations of its band structures at 51x51x1 k-point mesh revealed that there exist a Dirac cone near 1.4...

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Main Author: Guana, Dominic P.
Format: text
Language:English
Published: Animo Repository 2015
Online Access:https://animorepository.dlsu.edu.ph/etd_masteral/4766
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Institution: De La Salle University
Language: English
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spelling oai:animorepository.dlsu.edu.ph:etd_masteral-116042021-02-02T06:04:40Z Quantum capacitive response of 2D aluminium under GW approximation Guana, Dominic P. The quantum capacitive response of 2D aluminum was calculated using GW approximations. Density functional theory revealed that its lattice constant was 4.41 Å… with a bond distance of 2.55 Å…. Calculations of its band structures at 51x51x1 k-point mesh revealed that there exist a Dirac cone near 1.4 eV. Its conductivity was determined to be 2.4x1020 S/m/sec, about 12 times more conductive than graphene using similar parameters. A supercell was constructed to investigate the capacitive response of 2D aluminum upon depression. GW band energies were obtained to compute the quantum capacitance. Results showed that 2D aluminum exhibited a negative quantum capacitance with an increase in magnitude until a depression of 1.2 Å…. Investigation of the local density of states and band occupancies revealed that the changes in quantum capacitance was accompanied by the shifting of band peaks from valence to the conduction bands and increase in conduction band electron occupancies in point an effect that maybe correlated to the bond stretching between aluminum to aluminum atoms. The demonstrated quantum capacitive response of 2D aluminum can become crucial information in developing the next generation electromechanical systems for use in homes, hospitals, communications, transportations systems, weather predictions, and military. Moreover, the presence of the Dirac cone in its band structures as well as its calculated high conductivity may open opportunities in designing ultra-fast devices for spintronics and quantum computing applications. 2015-01-01T08:00:00Z text https://animorepository.dlsu.edu.ph/etd_masteral/4766 Master's Theses English Animo Repository
institution De La Salle University
building De La Salle University Library
continent Asia
country Philippines
Philippines
content_provider De La Salle University Library
collection DLSU Institutional Repository
language English
description The quantum capacitive response of 2D aluminum was calculated using GW approximations. Density functional theory revealed that its lattice constant was 4.41 Å… with a bond distance of 2.55 Å…. Calculations of its band structures at 51x51x1 k-point mesh revealed that there exist a Dirac cone near 1.4 eV. Its conductivity was determined to be 2.4x1020 S/m/sec, about 12 times more conductive than graphene using similar parameters. A supercell was constructed to investigate the capacitive response of 2D aluminum upon depression. GW band energies were obtained to compute the quantum capacitance. Results showed that 2D aluminum exhibited a negative quantum capacitance with an increase in magnitude until a depression of 1.2 Å…. Investigation of the local density of states and band occupancies revealed that the changes in quantum capacitance was accompanied by the shifting of band peaks from valence to the conduction bands and increase in conduction band electron occupancies in point an effect that maybe correlated to the bond stretching between aluminum to aluminum atoms. The demonstrated quantum capacitive response of 2D aluminum can become crucial information in developing the next generation electromechanical systems for use in homes, hospitals, communications, transportations systems, weather predictions, and military. Moreover, the presence of the Dirac cone in its band structures as well as its calculated high conductivity may open opportunities in designing ultra-fast devices for spintronics and quantum computing applications.
format text
author Guana, Dominic P.
spellingShingle Guana, Dominic P.
Quantum capacitive response of 2D aluminium under GW approximation
author_facet Guana, Dominic P.
author_sort Guana, Dominic P.
title Quantum capacitive response of 2D aluminium under GW approximation
title_short Quantum capacitive response of 2D aluminium under GW approximation
title_full Quantum capacitive response of 2D aluminium under GW approximation
title_fullStr Quantum capacitive response of 2D aluminium under GW approximation
title_full_unstemmed Quantum capacitive response of 2D aluminium under GW approximation
title_sort quantum capacitive response of 2d aluminium under gw approximation
publisher Animo Repository
publishDate 2015
url https://animorepository.dlsu.edu.ph/etd_masteral/4766
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