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Interpretation of dielectric behavior and polaron hopping in lead-free antimony-based double perovskite

Lately, double perovskite materials have become well-known in the commercialization area owing to their potential use in optoelectronic applications. Here, double perovskite Cs(2)AgSbCl(6) single crystals (SCs) with cubic crystal structure and Fm3̄m space group were successfully synthesized via the...

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Autores principales: Ben Bechir, Mohamed, Alresheedi, Faisal
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/PMC10682743/
https://www.ncbi.nlm.nih.gov/pubmed/38035244
http://dx.doi.org/10.1039/d3ra05857c
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author Ben Bechir, Mohamed
Alresheedi, Faisal
author_facet Ben Bechir, Mohamed
Alresheedi, Faisal
author_sort Ben Bechir, Mohamed
collection PubMed
description Lately, double perovskite materials have become well-known in the commercialization area owing to their potential use in optoelectronic applications. Here, double perovskite Cs(2)AgSbCl(6) single crystals (SCs) with cubic crystal structure and Fm3̄m space group were successfully synthesized via the slow cooling technique. This paper investigates the dielectric relaxation and charge transfer mechanism within Cs(2)AgSbCl(6) using electrochemical impedance spectroscopy (EIS) in the 273–393 K temperature range under light. The dielectric response in Cs(2)AgSbCl(6) has been explained by the space charge polarization and the ionic motion. The ε′(ω) study at different temperatures shows a remarkable frequency transition at which dε′/dT changes from a positive to a negative coefficient. Based on Stevels approach, the density of traps diminishes with the temperature increase, which improved conduction. However, this approach proves the polaronic conduction in Cs(2)AgSbCl(6). 0.42 and 0.21 eV are the binding (E(p)) and polaron hopping (W(H)) energy values, respectively. Contrary to free-charge carrier motion, polaron hopping was proposed as the principal conduction process since the ambient-temperature thermal energy was lower than E(p). Moreover, the analysis of M′′(ω) and −Z′′(ω) as a function of temperature shows the thermally-activated relaxation from the non-Debye to Debye type model in Cs(2)AgSbCl(6). This scientific research offers an essential understanding of the dielectric relaxation behavior, which is required for improving dielectric switches. Also, this paper provides a deep insight into the conduction mechanism within double perovskite materials.
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spelling pubmed-106827432023-11-30 Interpretation of dielectric behavior and polaron hopping in lead-free antimony-based double perovskite Ben Bechir, Mohamed Alresheedi, Faisal RSC Adv Chemistry Lately, double perovskite materials have become well-known in the commercialization area owing to their potential use in optoelectronic applications. Here, double perovskite Cs(2)AgSbCl(6) single crystals (SCs) with cubic crystal structure and Fm3̄m space group were successfully synthesized via the slow cooling technique. This paper investigates the dielectric relaxation and charge transfer mechanism within Cs(2)AgSbCl(6) using electrochemical impedance spectroscopy (EIS) in the 273–393 K temperature range under light. The dielectric response in Cs(2)AgSbCl(6) has been explained by the space charge polarization and the ionic motion. The ε′(ω) study at different temperatures shows a remarkable frequency transition at which dε′/dT changes from a positive to a negative coefficient. Based on Stevels approach, the density of traps diminishes with the temperature increase, which improved conduction. However, this approach proves the polaronic conduction in Cs(2)AgSbCl(6). 0.42 and 0.21 eV are the binding (E(p)) and polaron hopping (W(H)) energy values, respectively. Contrary to free-charge carrier motion, polaron hopping was proposed as the principal conduction process since the ambient-temperature thermal energy was lower than E(p). Moreover, the analysis of M′′(ω) and −Z′′(ω) as a function of temperature shows the thermally-activated relaxation from the non-Debye to Debye type model in Cs(2)AgSbCl(6). This scientific research offers an essential understanding of the dielectric relaxation behavior, which is required for improving dielectric switches. Also, this paper provides a deep insight into the conduction mechanism within double perovskite materials. The Royal Society of Chemistry 2023-11-28 /pmc/articles/PMC10682743/ /pubmed/38035244 http://dx.doi.org/10.1039/d3ra05857c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Ben Bechir, Mohamed
Alresheedi, Faisal
Interpretation of dielectric behavior and polaron hopping in lead-free antimony-based double perovskite
title Interpretation of dielectric behavior and polaron hopping in lead-free antimony-based double perovskite
title_full Interpretation of dielectric behavior and polaron hopping in lead-free antimony-based double perovskite
title_fullStr Interpretation of dielectric behavior and polaron hopping in lead-free antimony-based double perovskite
title_full_unstemmed Interpretation of dielectric behavior and polaron hopping in lead-free antimony-based double perovskite
title_short Interpretation of dielectric behavior and polaron hopping in lead-free antimony-based double perovskite
title_sort interpretation of dielectric behavior and polaron hopping in lead-free antimony-based double perovskite
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10682743/
https://www.ncbi.nlm.nih.gov/pubmed/38035244
http://dx.doi.org/10.1039/d3ra05857c
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