Enhanced DFT predictions of the structural and optoelectronic properties of MoTe2 for high performance photodetection: Application to GW-based functionals and Hubbard U and V corrections

Molybdenum ditelluride (MoTe2) is a promising two-dimensional material with ultimate prospective usage in high performance photodetection devices. In this study, we elucidate how this may be revealed and discuss how structural and optoelectronic properties of MoTe2 can be numerically accurately simu...

Full description

Saved in:
Bibliographic Details
Main Authors: Yamusa, Shehu Aminu, Shaari, Amiruddin, Alsaif, Norah A. M., Rekik, Najeh, Lakshminarayana, G., Isah, Ibrahim, Ismail, Magaji, Razali, Razif
Format: Article
Published: Elsevier B.V. 2023
Subjects:
Online Access:http://eprints.utm.my/106006/
http://dx.doi.org/10.1016/j.chemphys.2023.112018
Tags: Add Tag
No Tags, Be the first to tag this record!
id my.utm.106006
record_format eprints
spelling my.utm.1060062024-05-31T03:00:32Z http://eprints.utm.my/106006/ Enhanced DFT predictions of the structural and optoelectronic properties of MoTe2 for high performance photodetection: Application to GW-based functionals and Hubbard U and V corrections Yamusa, Shehu Aminu Shaari, Amiruddin Alsaif, Norah A. M. Rekik, Najeh Lakshminarayana, G. Isah, Ibrahim Ismail, Magaji Razali, Razif QC Physics Molybdenum ditelluride (MoTe2) is a promising two-dimensional material with ultimate prospective usage in high performance photodetection devices. In this study, we elucidate how this may be revealed and discuss how structural and optoelectronic properties of MoTe2 can be numerically accurately simulated since earlier experimental and theoretical studies on the bandgap of MoTe2 produced contradictory findings. In doing so, GW-based functionals using Hubbard U and V corrections are included in density functional theory (DFT) calculations to improve bandgap estimations. Interestingly, we reliably demonstrated that the estimated values of the bandgaps of 0.83 eV and 0.73 eV obtained, respectively, within this framework of DFT+U+V and GW, perfectly match the reported experimental results. Specifically, the quantum espresso simulation package is used for accurate DFT calculations allowing thereby a comprehensive investigation of the impact of the Hubbard U correction on the bandgap of MoTe2. Additionally, the optical absorption spectrum is examined for both GW and RPA levels of theory using the Yambo simulation tool, allowing for a readily distinctly identification of the material's light absorption spectrum. Contrasted by previous theoretical results, the random phase approximation (RPA) approach, which performs quite well in showing increased optical efficiency, reveals its effectiveness for obtaining appreciable gains in the values of the real, imaginary, refractive index, and extinction coefficient. The expected trends obtained with GW-based functionals using Hubbard U and V corrections approximate methods are encouraging, and altogether support ongoing attempts to optimize the physical properties of MoTe2 for high-performance photodetection systems by offering more precise bandgap predictions and valuable insights related particularly to the optical properties. Elsevier B.V. 2023 Article PeerReviewed Yamusa, Shehu Aminu and Shaari, Amiruddin and Alsaif, Norah A. M. and Rekik, Najeh and Lakshminarayana, G. and Isah, Ibrahim and Ismail, Magaji and Razali, Razif (2023) Enhanced DFT predictions of the structural and optoelectronic properties of MoTe2 for high performance photodetection: Application to GW-based functionals and Hubbard U and V corrections. Chemical Physics, 573 (NA). NA-NA. ISSN 0301-0104 http://dx.doi.org/10.1016/j.chemphys.2023.112018 DOI : 10.1016/j.chemphys.2023.112018
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic QC Physics
spellingShingle QC Physics
Yamusa, Shehu Aminu
Shaari, Amiruddin
Alsaif, Norah A. M.
Rekik, Najeh
Lakshminarayana, G.
Isah, Ibrahim
Ismail, Magaji
Razali, Razif
Enhanced DFT predictions of the structural and optoelectronic properties of MoTe2 for high performance photodetection: Application to GW-based functionals and Hubbard U and V corrections
description Molybdenum ditelluride (MoTe2) is a promising two-dimensional material with ultimate prospective usage in high performance photodetection devices. In this study, we elucidate how this may be revealed and discuss how structural and optoelectronic properties of MoTe2 can be numerically accurately simulated since earlier experimental and theoretical studies on the bandgap of MoTe2 produced contradictory findings. In doing so, GW-based functionals using Hubbard U and V corrections are included in density functional theory (DFT) calculations to improve bandgap estimations. Interestingly, we reliably demonstrated that the estimated values of the bandgaps of 0.83 eV and 0.73 eV obtained, respectively, within this framework of DFT+U+V and GW, perfectly match the reported experimental results. Specifically, the quantum espresso simulation package is used for accurate DFT calculations allowing thereby a comprehensive investigation of the impact of the Hubbard U correction on the bandgap of MoTe2. Additionally, the optical absorption spectrum is examined for both GW and RPA levels of theory using the Yambo simulation tool, allowing for a readily distinctly identification of the material's light absorption spectrum. Contrasted by previous theoretical results, the random phase approximation (RPA) approach, which performs quite well in showing increased optical efficiency, reveals its effectiveness for obtaining appreciable gains in the values of the real, imaginary, refractive index, and extinction coefficient. The expected trends obtained with GW-based functionals using Hubbard U and V corrections approximate methods are encouraging, and altogether support ongoing attempts to optimize the physical properties of MoTe2 for high-performance photodetection systems by offering more precise bandgap predictions and valuable insights related particularly to the optical properties.
format Article
author Yamusa, Shehu Aminu
Shaari, Amiruddin
Alsaif, Norah A. M.
Rekik, Najeh
Lakshminarayana, G.
Isah, Ibrahim
Ismail, Magaji
Razali, Razif
author_facet Yamusa, Shehu Aminu
Shaari, Amiruddin
Alsaif, Norah A. M.
Rekik, Najeh
Lakshminarayana, G.
Isah, Ibrahim
Ismail, Magaji
Razali, Razif
author_sort Yamusa, Shehu Aminu
title Enhanced DFT predictions of the structural and optoelectronic properties of MoTe2 for high performance photodetection: Application to GW-based functionals and Hubbard U and V corrections
title_short Enhanced DFT predictions of the structural and optoelectronic properties of MoTe2 for high performance photodetection: Application to GW-based functionals and Hubbard U and V corrections
title_full Enhanced DFT predictions of the structural and optoelectronic properties of MoTe2 for high performance photodetection: Application to GW-based functionals and Hubbard U and V corrections
title_fullStr Enhanced DFT predictions of the structural and optoelectronic properties of MoTe2 for high performance photodetection: Application to GW-based functionals and Hubbard U and V corrections
title_full_unstemmed Enhanced DFT predictions of the structural and optoelectronic properties of MoTe2 for high performance photodetection: Application to GW-based functionals and Hubbard U and V corrections
title_sort enhanced dft predictions of the structural and optoelectronic properties of mote2 for high performance photodetection: application to gw-based functionals and hubbard u and v corrections
publisher Elsevier B.V.
publishDate 2023
url http://eprints.utm.my/106006/
http://dx.doi.org/10.1016/j.chemphys.2023.112018
_version_ 1800714797174489088
score 13.160551