First-principles calculations to investigate the elastic, electronic, dynamical, and optical properties of cubic ZrCoAs half-Heusler semiconductor for photovoltaic applications

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dc.contributor.author Allan, Lynet
dc.contributor.author Mapasha, Refilwe Edwin
dc.contributor.author Mulwa, Winfred M.
dc.contributor.author Mwabora, Julius M.
dc.contributor.author Musembi, Robinson J.
dc.date.accessioned 2024-09-17T08:06:29Z
dc.date.available 2024-09-17T08:06:29Z
dc.date.issued 2024-06
dc.description.abstract The electronic, mechanical, elastic, dynamical, and optical properties of the ZrCoAs half-Heusler compound have been systematically investigated using the plane wave self-consistent field approach with the Perdew-Burke-Erzerhof generalized gradient approximation (GGA-PBE) exchange-correlation functional. The study includes examinations with and without spin orbit coupling (SOC) effects. Results indicate a decrease in the Kohn-Sham band gap with the inclusion of SOC effects. Electronic bandgap formation was attributed to Co 3d, Zr 3d, and As 2p for the conduction band, and Co 3d and As 2p for the valence band without SOC effects. With SOC, Co 5d, Zr 8d, and As 3p dominated the conduction band, while Co 3d and As 3p dominated the valence band. The lattice constant showed a 0. 063% decrease with the SOC effects, which is better aligned with the experimental observations. ZrCoAs demonstrated ductility, mechanical stability, and dynamical stability. The optical properties were found to be excellent for photovoltaic applications, suggesting its potential in solar energy conversion technology. This study provides valuable information on ZrCoAs and presents opportunities for its use in solar cells, optoelectronic devices, and thermoelectric applications. The material's versatility and suitability for practical applications make it a promising candidate for further exploration in renewable energy research. en_US
dc.description.department Physics en_US
dc.description.librarian hj2024 en_US
dc.description.sdg SDG-07:Affordable and clean energy en_US
dc.description.sponsorship The Partnership for Skills in Applied Sciences, Engineering, and Technology (PASET)-Regional Scholarship Innovation Fund (RSIF), which provided additional funding through the DOCTAS Grant. en_US
dc.description.uri https://www.sciencedirect.com/journal/results-in-materials en_US
dc.identifier.citation Allan, L., Mapasha, R.E., Mulwa, W.M. et al. 2024, 'First-principles calculations to investigate the elastic, electronic, dynamical, and optical properties of cubic ZrCoAs half-Heusler semiconductor for photovoltaic applications', Results in Materials, vol. 22, art. 100558, pp. 1-9, doi : 10.1016/j.rinma.2024.100558. en_US
dc.identifier.issn 2590-048X (online)
dc.identifier.uri http://hdl.handle.net/2263/98250
dc.language.iso en en_US
dc.publisher Elsevier en_US
dc.rights © 2024 The Authors. Published by Elsevier B.V. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/bync-nd/4.0/). en_US
dc.subject Cubic ZrCoAs en_US
dc.subject Half-Heusler semiconductor en_US
dc.subject Photovoltaic (PV) en_US
dc.subject Elastic properties en_US
dc.subject Electronic properties en_US
dc.subject Dynamical properties en_US
dc.subject Optical properties en_US
dc.subject Perdew-Burke-Erzerhof generalized gradient approximation (GGA-PBE) en_US
dc.subject Spin orbit coupling (SOC) en_US
dc.subject SDG-07: Affordable and clean energy en_US
dc.title First-principles calculations to investigate the elastic, electronic, dynamical, and optical properties of cubic ZrCoAs half-Heusler semiconductor for photovoltaic applications en_US
dc.type Article en_US


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