A comparative DFT study to investigate structural, electronic, and optical properties and bandgap engineering of 2D XSn4O7(X=Ba, Ca) and XSi4O9(X=Ba, Ca) materials for photocatalytic and solar cell applications

This comparison study is based on Density Functional Theory (DFT) to investigate the structural, electrical, and optical properties of two-dimensional XSn4O7(X=Ba, Ca) and XSi4O9(X = Ba, Ca) materials. First-principles analysis using the PBE-GGA (Perdew Burke-Ernzerhof Generalized Gradient Approxima...

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Main Authors: Jameel, Muhammad Hasnain, Tuama, Alaa Nihad, Mezan, Salim Oudah, A. Abdulkhudher, Basheer, Yasin, Aqeela, Mayzan, Mohd Zul Hilmi, Roslan, Muhammad Sufi, Mahdi Badi, Karrar, H. Alzubaidi, Laith
Format: Article
Language:en
Published: elsevier 2025
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Online Access:http://eprints.uthm.edu.my/12666/1/J19290_be3d02608607fefa865407b24e817fca.pdf
http://eprints.uthm.edu.my/12666/
https://doi.org/10.1016/j.rineng.2024.103725
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author Jameel, Muhammad Hasnain
Tuama, Alaa Nihad
Mezan, Salim Oudah
A. Abdulkhudher, Basheer
Yasin, Aqeela
Mayzan, Mohd Zul Hilmi
Roslan, Muhammad Sufi
Mahdi Badi, Karrar
H. Alzubaidi, Laith
author_facet Jameel, Muhammad Hasnain
Tuama, Alaa Nihad
Mezan, Salim Oudah
A. Abdulkhudher, Basheer
Yasin, Aqeela
Mayzan, Mohd Zul Hilmi
Roslan, Muhammad Sufi
Mahdi Badi, Karrar
H. Alzubaidi, Laith
author_sort Jameel, Muhammad Hasnain
building UTHM Library
collection Institutional Repository
content_provider Universiti Tun Hussein Onn Malaysia
content_source UTHM Institutional Repository
continent Asia
country Malaysia
description This comparison study is based on Density Functional Theory (DFT) to investigate the structural, electrical, and optical properties of two-dimensional XSn4O7(X=Ba, Ca) and XSi4O9(X = Ba, Ca) materials. First-principles analysis using the PBE-GGA (Perdew Burke-Ernzerhof Generalized Gradient Approximation) shows that Ca and Ba have a major impact on the electrical characteristics, energy band gap (Eg), and structural stability. The volume of crystal cells of XSn4O7 (X=Ba, Ca) and XSi4O9(X= Ba, Ca) decreased from 581.794 to 354.022A3 due to the ionic radii difference of Ba and Ca from 268 to 231 pm respectively. The calculated energy bandgaps (Eg) are 4.28, 2.14, 0.88, and 0.34 eV for BaSi4O9, CaSi4O9, BaSn4O7, and CaSn4O7 respectively. These energy bandgap values indicate that BaSi4O9 and CaSi4O9 have wide band gaps while BaSn4O7 and CaSn4O7 exhibit small energy band gaps, making them suitable and more responsive to UV visible light. The detailed results of optical conductivity show that the peaks of optical conductance for 2D XSn4O7(X=Ba, Ca) and XSi4O9(X=Ba, Ca) reach maximum values of 1.7, 2.2, 2.9, and 6 cm− 1 in the ultraviolet spectrum at energies ranging from 0 to 40eV, respectively. Two dimensional XSn4O7 (X=Ba, Ca) and XSi4O9 (X=Ba, Ca) materials showed maximal optical absorption with absorption coefficient α(w) values of 4.1 × 105 , 2.2 × 105 , 1.5 × 105 , and 1 × 105 cm-1, respectively. In comparison to other materials, the highest absorption is found in BaSn4O7 and CaSn4O7, with absorption coefficients of 4.1 × 105 cm-1 and 2.2 × 105 cm-1, respectively. Our findings indicate that 2D XSn4O7(X=Ba, Ca) and XSi4O9(X=Ba, Ca) oxides, are appropriate for photocatalytic and solar cell applications.
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spelling my.uthm.eprints-126662025-06-05T07:12:37Z http://eprints.uthm.edu.my/12666/ A comparative DFT study to investigate structural, electronic, and optical properties and bandgap engineering of 2D XSn4O7(X=Ba, Ca) and XSi4O9(X=Ba, Ca) materials for photocatalytic and solar cell applications Jameel, Muhammad Hasnain Tuama, Alaa Nihad Mezan, Salim Oudah A. Abdulkhudher, Basheer Yasin, Aqeela Mayzan, Mohd Zul Hilmi Roslan, Muhammad Sufi Mahdi Badi, Karrar H. Alzubaidi, Laith QC Physics This comparison study is based on Density Functional Theory (DFT) to investigate the structural, electrical, and optical properties of two-dimensional XSn4O7(X=Ba, Ca) and XSi4O9(X = Ba, Ca) materials. First-principles analysis using the PBE-GGA (Perdew Burke-Ernzerhof Generalized Gradient Approximation) shows that Ca and Ba have a major impact on the electrical characteristics, energy band gap (Eg), and structural stability. The volume of crystal cells of XSn4O7 (X=Ba, Ca) and XSi4O9(X= Ba, Ca) decreased from 581.794 to 354.022A3 due to the ionic radii difference of Ba and Ca from 268 to 231 pm respectively. The calculated energy bandgaps (Eg) are 4.28, 2.14, 0.88, and 0.34 eV for BaSi4O9, CaSi4O9, BaSn4O7, and CaSn4O7 respectively. These energy bandgap values indicate that BaSi4O9 and CaSi4O9 have wide band gaps while BaSn4O7 and CaSn4O7 exhibit small energy band gaps, making them suitable and more responsive to UV visible light. The detailed results of optical conductivity show that the peaks of optical conductance for 2D XSn4O7(X=Ba, Ca) and XSi4O9(X=Ba, Ca) reach maximum values of 1.7, 2.2, 2.9, and 6 cm− 1 in the ultraviolet spectrum at energies ranging from 0 to 40eV, respectively. Two dimensional XSn4O7 (X=Ba, Ca) and XSi4O9 (X=Ba, Ca) materials showed maximal optical absorption with absorption coefficient α(w) values of 4.1 × 105 , 2.2 × 105 , 1.5 × 105 , and 1 × 105 cm-1, respectively. In comparison to other materials, the highest absorption is found in BaSn4O7 and CaSn4O7, with absorption coefficients of 4.1 × 105 cm-1 and 2.2 × 105 cm-1, respectively. Our findings indicate that 2D XSn4O7(X=Ba, Ca) and XSi4O9(X=Ba, Ca) oxides, are appropriate for photocatalytic and solar cell applications. elsevier 2025 Article PeerReviewed text en http://eprints.uthm.edu.my/12666/1/J19290_be3d02608607fefa865407b24e817fca.pdf Jameel, Muhammad Hasnain and Tuama, Alaa Nihad and Mezan, Salim Oudah and A. Abdulkhudher, Basheer and Yasin, Aqeela and Mayzan, Mohd Zul Hilmi and Roslan, Muhammad Sufi and Mahdi Badi, Karrar and H. Alzubaidi, Laith (2025) A comparative DFT study to investigate structural, electronic, and optical properties and bandgap engineering of 2D XSn4O7(X=Ba, Ca) and XSi4O9(X=Ba, Ca) materials for photocatalytic and solar cell applications. Results in Engineering, 25. pp. 1-12. https://doi.org/10.1016/j.rineng.2024.103725
spellingShingle QC Physics
Jameel, Muhammad Hasnain
Tuama, Alaa Nihad
Mezan, Salim Oudah
A. Abdulkhudher, Basheer
Yasin, Aqeela
Mayzan, Mohd Zul Hilmi
Roslan, Muhammad Sufi
Mahdi Badi, Karrar
H. Alzubaidi, Laith
A comparative DFT study to investigate structural, electronic, and optical properties and bandgap engineering of 2D XSn4O7(X=Ba, Ca) and XSi4O9(X=Ba, Ca) materials for photocatalytic and solar cell applications
title A comparative DFT study to investigate structural, electronic, and optical properties and bandgap engineering of 2D XSn4O7(X=Ba, Ca) and XSi4O9(X=Ba, Ca) materials for photocatalytic and solar cell applications
title_full A comparative DFT study to investigate structural, electronic, and optical properties and bandgap engineering of 2D XSn4O7(X=Ba, Ca) and XSi4O9(X=Ba, Ca) materials for photocatalytic and solar cell applications
title_fullStr A comparative DFT study to investigate structural, electronic, and optical properties and bandgap engineering of 2D XSn4O7(X=Ba, Ca) and XSi4O9(X=Ba, Ca) materials for photocatalytic and solar cell applications
title_full_unstemmed A comparative DFT study to investigate structural, electronic, and optical properties and bandgap engineering of 2D XSn4O7(X=Ba, Ca) and XSi4O9(X=Ba, Ca) materials for photocatalytic and solar cell applications
title_short A comparative DFT study to investigate structural, electronic, and optical properties and bandgap engineering of 2D XSn4O7(X=Ba, Ca) and XSi4O9(X=Ba, Ca) materials for photocatalytic and solar cell applications
title_sort comparative dft study to investigate structural, electronic, and optical properties and bandgap engineering of 2d xsn4o7(x=ba, ca) and xsi4o9(x=ba, ca) materials for photocatalytic and solar cell applications
topic QC Physics
url http://eprints.uthm.edu.my/12666/1/J19290_be3d02608607fefa865407b24e817fca.pdf
http://eprints.uthm.edu.my/12666/
https://doi.org/10.1016/j.rineng.2024.103725
url_provider http://eprints.uthm.edu.my/