The effect of Ni-doping on the stability of Li2MnO3 cathode material: a DFT study

The density functional theory with Hubbard parameter (DFT+U) incorporated within the Vienna Ab Initio Simulation Package was utilized to investigate the structural, electronic, elastic, and dynamical properties of pristine and Ni-doped Li2MnO3. The cluster expansion technique was used to generate th...

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Main Authors: Mphahlele M. G., Masedi M. C., Malatji K. T., Ngoepe P. E., Ledwaba R. S.
Format: Article
Language:English
Published: EDP Sciences 2023-01-01
Series:MATEC Web of Conferences
Online Access:https://www.matec-conferences.org/articles/matecconf/pdf/2023/15/matecconf_rapdasa2023_07005.pdf
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author Mphahlele M. G.
Masedi M. C.
Malatji K. T.
Ngoepe P. E.
Ledwaba R. S.
author_facet Mphahlele M. G.
Masedi M. C.
Malatji K. T.
Ngoepe P. E.
Ledwaba R. S.
author_sort Mphahlele M. G.
collection DOAJ
description The density functional theory with Hubbard parameter (DFT+U) incorporated within the Vienna Ab Initio Simulation Package was utilized to investigate the structural, electronic, elastic, and dynamical properties of pristine and Ni-doped Li2MnO3. The cluster expansion technique was used to generate the doped phases of Li2MnO3. The binary phase diagram predicted Li2Mn0.83Ni0.17O3 as the most stable phase with the lowest heat of formation. The study shows that Li2Mn0.83Ni0.17O3 is more thermodynamically stable than Li2MnO3 with a lower heat of formation. Additionally, the density of states showed that Li2Mn0.83Ni0.17O3 has a narrower band gap of 1.54 eV compared to the undoped structure with a band gap of 1.89 eV which leads to a higher electrical conductivity of the material. The elastic constants show that both structures are mechanically stable and lastly the phonon dispersions showed that these structures are vibrationally stable with no presence of imaginary vibrations. Finally, based on the results, Li2Mn0.83Ni0.17O3 can be proposed as potential cathode materials for use in lithium-ion batteries.
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spelling doaj.art-f6a981e1186748cc91769ac0a4fdc38b2024-01-26T16:40:09ZengEDP SciencesMATEC Web of Conferences2261-236X2023-01-013880700510.1051/matecconf/202338807005matecconf_rapdasa2023_07005The effect of Ni-doping on the stability of Li2MnO3 cathode material: a DFT studyMphahlele M. G.0Masedi M. C.1Malatji K. T.2Ngoepe P. E.3Ledwaba R. S.4Materials Modelling Centre, University of LimpopoMaterials Modelling Centre, University of LimpopoMaterials Modelling Centre, University of LimpopoMaterials Modelling Centre, University of LimpopoMaterials Modelling Centre, University of LimpopoThe density functional theory with Hubbard parameter (DFT+U) incorporated within the Vienna Ab Initio Simulation Package was utilized to investigate the structural, electronic, elastic, and dynamical properties of pristine and Ni-doped Li2MnO3. The cluster expansion technique was used to generate the doped phases of Li2MnO3. The binary phase diagram predicted Li2Mn0.83Ni0.17O3 as the most stable phase with the lowest heat of formation. The study shows that Li2Mn0.83Ni0.17O3 is more thermodynamically stable than Li2MnO3 with a lower heat of formation. Additionally, the density of states showed that Li2Mn0.83Ni0.17O3 has a narrower band gap of 1.54 eV compared to the undoped structure with a band gap of 1.89 eV which leads to a higher electrical conductivity of the material. The elastic constants show that both structures are mechanically stable and lastly the phonon dispersions showed that these structures are vibrationally stable with no presence of imaginary vibrations. Finally, based on the results, Li2Mn0.83Ni0.17O3 can be proposed as potential cathode materials for use in lithium-ion batteries.https://www.matec-conferences.org/articles/matecconf/pdf/2023/15/matecconf_rapdasa2023_07005.pdf
spellingShingle Mphahlele M. G.
Masedi M. C.
Malatji K. T.
Ngoepe P. E.
Ledwaba R. S.
The effect of Ni-doping on the stability of Li2MnO3 cathode material: a DFT study
MATEC Web of Conferences
title The effect of Ni-doping on the stability of Li2MnO3 cathode material: a DFT study
title_full The effect of Ni-doping on the stability of Li2MnO3 cathode material: a DFT study
title_fullStr The effect of Ni-doping on the stability of Li2MnO3 cathode material: a DFT study
title_full_unstemmed The effect of Ni-doping on the stability of Li2MnO3 cathode material: a DFT study
title_short The effect of Ni-doping on the stability of Li2MnO3 cathode material: a DFT study
title_sort effect of ni doping on the stability of li2mno3 cathode material a dft study
url https://www.matec-conferences.org/articles/matecconf/pdf/2023/15/matecconf_rapdasa2023_07005.pdf
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