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Combined experimental and DFT approach to BiNbO(4) polymorphs

Here we present a detailed ab initio study of two experimentally synthesized bismuth niobate BiNbO(4) (BNO) polymorphs within the framework of density functional theory (DFT). We synthesized orthorhombic α-BNO and triclinic β-BNO using a solid-state reaction technique. The underlying Pnna and P1̄ cr...

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Autores principales: Hossain, Md. Zarif, Nishat, Sadiq Shahriyar, Ahmed, Shahran, Hossain, Quazi Shafayat, Khan, M. N. I., Hasan, Tarique, Bashar, Muhammad Shahriar, Hossain Faysal, A. K. M. Sarwar, Syed, Ishtiaque M., Hossain, Khandker Saadat, Hussain, Sakhawat, Khan, Md. Mosaddek, Ahmed, Imtiaz
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9926165/
https://www.ncbi.nlm.nih.gov/pubmed/36798614
http://dx.doi.org/10.1039/d2ra07910k
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author Hossain, Md. Zarif
Nishat, Sadiq Shahriyar
Ahmed, Shahran
Hossain, Quazi Shafayat
Khan, M. N. I.
Hasan, Tarique
Bashar, Muhammad Shahriar
Hossain Faysal, A. K. M. Sarwar
Syed, Ishtiaque M.
Hossain, Khandker Saadat
Hussain, Sakhawat
Khan, Md. Mosaddek
Ahmed, Imtiaz
author_facet Hossain, Md. Zarif
Nishat, Sadiq Shahriyar
Ahmed, Shahran
Hossain, Quazi Shafayat
Khan, M. N. I.
Hasan, Tarique
Bashar, Muhammad Shahriar
Hossain Faysal, A. K. M. Sarwar
Syed, Ishtiaque M.
Hossain, Khandker Saadat
Hussain, Sakhawat
Khan, Md. Mosaddek
Ahmed, Imtiaz
author_sort Hossain, Md. Zarif
collection PubMed
description Here we present a detailed ab initio study of two experimentally synthesized bismuth niobate BiNbO(4) (BNO) polymorphs within the framework of density functional theory (DFT). We synthesized orthorhombic α-BNO and triclinic β-BNO using a solid-state reaction technique. The underlying Pnna and P1̄ crystal symmetries along with their respective phase purity have been confirmed from Rietveld refinement of the powdered X-ray diffraction measurements in combination with generalized gradient approximation of Perdew–Burke–Ernzerhof (GGA-PBE) based DFT simulations. The scanning electron micrographs revealed average grain sizes to be 500 nm and 1 μm for α-BNO and β-BNO respectively. The energy-dispersive X-ray spectroscopy identified the Bi, Nb, and O with proper stoichiometry. The phase purity of the as-synthesized samples was further confirmed by comparing the local density approximation (LDA) norm-conserving pseudo-potential based DFT-simulated Raman peaks with that of experimentally measured ones. The relevant bond vibrations detected in Fourier transform infrared spectroscopy were matched with GGA-PBE derived phonon density of states simulation for both polymorphs. The structural stability and the charge dynamics of the polymorphs were verified from elastic stress and born charge tensor simulations respectively. The dynamical stability of the α-BNO was confirmed from phonon band structure simulation using density functional perturbation theory with Heyd–Scuseria–Ernzerhof (HSE06) hybrid functional. The electronic band gaps of 3.08 and 3.36 eV for α-BNO and β-BNO measured from UV-Vis diffuse reflectance measurements were matched with the sophisticated HSE06 band structure simulation by adjusting the Hartree–Fock exchange parameter. Both GGA-PBE and HSE06 functional were used to simulate complex dielectric function and its derivatives with the help of Fermi's golden rule to define the optical properties in the linear regime. All these may have provided a rigorous theoretical analysis for the experimentally synthesized α-BNO and β-BNO polymorphs.
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spelling pubmed-99261652023-02-15 Combined experimental and DFT approach to BiNbO(4) polymorphs Hossain, Md. Zarif Nishat, Sadiq Shahriyar Ahmed, Shahran Hossain, Quazi Shafayat Khan, M. N. I. Hasan, Tarique Bashar, Muhammad Shahriar Hossain Faysal, A. K. M. Sarwar Syed, Ishtiaque M. Hossain, Khandker Saadat Hussain, Sakhawat Khan, Md. Mosaddek Ahmed, Imtiaz RSC Adv Chemistry Here we present a detailed ab initio study of two experimentally synthesized bismuth niobate BiNbO(4) (BNO) polymorphs within the framework of density functional theory (DFT). We synthesized orthorhombic α-BNO and triclinic β-BNO using a solid-state reaction technique. The underlying Pnna and P1̄ crystal symmetries along with their respective phase purity have been confirmed from Rietveld refinement of the powdered X-ray diffraction measurements in combination with generalized gradient approximation of Perdew–Burke–Ernzerhof (GGA-PBE) based DFT simulations. The scanning electron micrographs revealed average grain sizes to be 500 nm and 1 μm for α-BNO and β-BNO respectively. The energy-dispersive X-ray spectroscopy identified the Bi, Nb, and O with proper stoichiometry. The phase purity of the as-synthesized samples was further confirmed by comparing the local density approximation (LDA) norm-conserving pseudo-potential based DFT-simulated Raman peaks with that of experimentally measured ones. The relevant bond vibrations detected in Fourier transform infrared spectroscopy were matched with GGA-PBE derived phonon density of states simulation for both polymorphs. The structural stability and the charge dynamics of the polymorphs were verified from elastic stress and born charge tensor simulations respectively. The dynamical stability of the α-BNO was confirmed from phonon band structure simulation using density functional perturbation theory with Heyd–Scuseria–Ernzerhof (HSE06) hybrid functional. The electronic band gaps of 3.08 and 3.36 eV for α-BNO and β-BNO measured from UV-Vis diffuse reflectance measurements were matched with the sophisticated HSE06 band structure simulation by adjusting the Hartree–Fock exchange parameter. Both GGA-PBE and HSE06 functional were used to simulate complex dielectric function and its derivatives with the help of Fermi's golden rule to define the optical properties in the linear regime. All these may have provided a rigorous theoretical analysis for the experimentally synthesized α-BNO and β-BNO polymorphs. The Royal Society of Chemistry 2023-02-14 /pmc/articles/PMC9926165/ /pubmed/36798614 http://dx.doi.org/10.1039/d2ra07910k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Hossain, Md. Zarif
Nishat, Sadiq Shahriyar
Ahmed, Shahran
Hossain, Quazi Shafayat
Khan, M. N. I.
Hasan, Tarique
Bashar, Muhammad Shahriar
Hossain Faysal, A. K. M. Sarwar
Syed, Ishtiaque M.
Hossain, Khandker Saadat
Hussain, Sakhawat
Khan, Md. Mosaddek
Ahmed, Imtiaz
Combined experimental and DFT approach to BiNbO(4) polymorphs
title Combined experimental and DFT approach to BiNbO(4) polymorphs
title_full Combined experimental and DFT approach to BiNbO(4) polymorphs
title_fullStr Combined experimental and DFT approach to BiNbO(4) polymorphs
title_full_unstemmed Combined experimental and DFT approach to BiNbO(4) polymorphs
title_short Combined experimental and DFT approach to BiNbO(4) polymorphs
title_sort combined experimental and dft approach to binbo(4) polymorphs
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9926165/
https://www.ncbi.nlm.nih.gov/pubmed/36798614
http://dx.doi.org/10.1039/d2ra07910k
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