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Experimental analysis of methylammonium and Formamidinium-based halide perovskite properties for optoelectronic applications

Nowadays, the toxicity of lead in metal-halide perovskites is the most precarious obstruction in the commercialization of perovskite-based optoelectronic devices. However, Pb-free metal halide perovskites as environment-friendly materials because of their exceptional properties, such as band-gap tun...

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Autores principales: Mehra, Sonali, Mamta, Singh, V.N., Gupta, Govind, Srivastava, A.K., Sharma, Shailesh Narain
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10651522/
https://www.ncbi.nlm.nih.gov/pubmed/38027742
http://dx.doi.org/10.1016/j.heliyon.2023.e21701
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author Mehra, Sonali
Mamta
Singh, V.N.
Gupta, Govind
Srivastava, A.K.
Sharma, Shailesh Narain
author_facet Mehra, Sonali
Mamta
Singh, V.N.
Gupta, Govind
Srivastava, A.K.
Sharma, Shailesh Narain
author_sort Mehra, Sonali
collection PubMed
description Nowadays, the toxicity of lead in metal-halide perovskites is the most precarious obstruction in the commercialization of perovskite-based optoelectronic devices. However, Pb-free metal halide perovskites as environment-friendly materials because of their exceptional properties, such as band-gap tunability, narrow emission spectra, low toxicity and easy solution-processability, are potential candidates for optoelectronic applications. Recently, literature reported the poor structural stability and low-emission intensity of Bi-based perovskite NCs. Still, this paper focuses on the fabrication of Formamidinium (FA)-based Bi mixed halide and Methylammonium(MA)-based Bi-pure halide perovskites using Ligand-Assisted Reprecipitation Technique (LARP) technique. XRD diffraction patterns of FA-based perovskites were slightly broad, signifying the nanocrystalline form and limited size of perovskite nanocrystals. While the XRD diffraction patterns of MA(3)Bi(2)X(9) (X = Cl/Br/I) perovskites were narrow, signifying the amorphous nature and larger size of perovskite nanocrystals. The peak positions were varied in MA-based bismuth halide perovskites with respect to the halide variation from Br to Cl to I ions. The optical study shows the variation in band gap and average lifetime with respect to halide variation leading to enhanced optical properties for device applications. The band-gap of FA(3)Bi(2)Br(x)Cl(1-x) & FA(3)Bi(2)I(x)Cl(1-x) perovskites was calculated to be around 3.7 & 3.8 eV, respectively, while in MA-halide perovskites the band-gap was calculated to be 2.8 eV, 3.1 eV & 3.4 eV with respect to halide variation from I to Cl to Br in perovskite samples using Tauc's plot respectively. Moreover, simulation is carried out using the SCAPS-1D software to study the various parameters in MA & FA-based Bi-pure or mixed halide perovskites. Here, we discussed the variation in efficiency with respect to the thickness variation from 100 to 500 nm for MA(3)Bi(2)I(9) halide perovskites. These MA(3)Bi(2)I(9) halide perovskites show minimum efficiency of 4.65 % at 100 nm thickness, while the perovskite sample exhibits maximum efficiency of 10.32 % at 500 nm thickness. Thus, the results stated that the thickness of absorber layers directly affects the device characteristics for optoelectronic applications.
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spelling pubmed-106515222023-10-28 Experimental analysis of methylammonium and Formamidinium-based halide perovskite properties for optoelectronic applications Mehra, Sonali Mamta Singh, V.N. Gupta, Govind Srivastava, A.K. Sharma, Shailesh Narain Heliyon Research Article Nowadays, the toxicity of lead in metal-halide perovskites is the most precarious obstruction in the commercialization of perovskite-based optoelectronic devices. However, Pb-free metal halide perovskites as environment-friendly materials because of their exceptional properties, such as band-gap tunability, narrow emission spectra, low toxicity and easy solution-processability, are potential candidates for optoelectronic applications. Recently, literature reported the poor structural stability and low-emission intensity of Bi-based perovskite NCs. Still, this paper focuses on the fabrication of Formamidinium (FA)-based Bi mixed halide and Methylammonium(MA)-based Bi-pure halide perovskites using Ligand-Assisted Reprecipitation Technique (LARP) technique. XRD diffraction patterns of FA-based perovskites were slightly broad, signifying the nanocrystalline form and limited size of perovskite nanocrystals. While the XRD diffraction patterns of MA(3)Bi(2)X(9) (X = Cl/Br/I) perovskites were narrow, signifying the amorphous nature and larger size of perovskite nanocrystals. The peak positions were varied in MA-based bismuth halide perovskites with respect to the halide variation from Br to Cl to I ions. The optical study shows the variation in band gap and average lifetime with respect to halide variation leading to enhanced optical properties for device applications. The band-gap of FA(3)Bi(2)Br(x)Cl(1-x) & FA(3)Bi(2)I(x)Cl(1-x) perovskites was calculated to be around 3.7 & 3.8 eV, respectively, while in MA-halide perovskites the band-gap was calculated to be 2.8 eV, 3.1 eV & 3.4 eV with respect to halide variation from I to Cl to Br in perovskite samples using Tauc's plot respectively. Moreover, simulation is carried out using the SCAPS-1D software to study the various parameters in MA & FA-based Bi-pure or mixed halide perovskites. Here, we discussed the variation in efficiency with respect to the thickness variation from 100 to 500 nm for MA(3)Bi(2)I(9) halide perovskites. These MA(3)Bi(2)I(9) halide perovskites show minimum efficiency of 4.65 % at 100 nm thickness, while the perovskite sample exhibits maximum efficiency of 10.32 % at 500 nm thickness. Thus, the results stated that the thickness of absorber layers directly affects the device characteristics for optoelectronic applications. Elsevier 2023-10-28 /pmc/articles/PMC10651522/ /pubmed/38027742 http://dx.doi.org/10.1016/j.heliyon.2023.e21701 Text en © 2023 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Mehra, Sonali
Mamta
Singh, V.N.
Gupta, Govind
Srivastava, A.K.
Sharma, Shailesh Narain
Experimental analysis of methylammonium and Formamidinium-based halide perovskite properties for optoelectronic applications
title Experimental analysis of methylammonium and Formamidinium-based halide perovskite properties for optoelectronic applications
title_full Experimental analysis of methylammonium and Formamidinium-based halide perovskite properties for optoelectronic applications
title_fullStr Experimental analysis of methylammonium and Formamidinium-based halide perovskite properties for optoelectronic applications
title_full_unstemmed Experimental analysis of methylammonium and Formamidinium-based halide perovskite properties for optoelectronic applications
title_short Experimental analysis of methylammonium and Formamidinium-based halide perovskite properties for optoelectronic applications
title_sort experimental analysis of methylammonium and formamidinium-based halide perovskite properties for optoelectronic applications
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10651522/
https://www.ncbi.nlm.nih.gov/pubmed/38027742
http://dx.doi.org/10.1016/j.heliyon.2023.e21701
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