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Crystal structure and optical characterization of a new hybrid compound, C(6)H(9)N(2)FeCl(4), with large dielectric constants for field-effect transistors

Due to remarkable dielectric features, such as a large dielectric constant, strong electrical conductivity, high capacitance, and low dielectric loss, hybrid materials have lately seen a huge number of applications in the field of optoelectronics. These are critical characteristics that qualify the...

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Autores principales: Ghoudi, A., Ben Brahim, Kh., Ghalla, H., Lhoste, J., Auguste, S., Khirouni, K., Aydi, A., Oueslati, A.
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/PMC10126822/
https://www.ncbi.nlm.nih.gov/pubmed/37114024
http://dx.doi.org/10.1039/d3ra01239e
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author Ghoudi, A.
Ben Brahim, Kh.
Ghalla, H.
Lhoste, J.
Auguste, S.
Khirouni, K.
Aydi, A.
Oueslati, A.
author_facet Ghoudi, A.
Ben Brahim, Kh.
Ghalla, H.
Lhoste, J.
Auguste, S.
Khirouni, K.
Aydi, A.
Oueslati, A.
author_sort Ghoudi, A.
collection PubMed
description Due to remarkable dielectric features, such as a large dielectric constant, strong electrical conductivity, high capacitance, and low dielectric loss, hybrid materials have lately seen a huge number of applications in the field of optoelectronics. These are critical characteristics that qualify the performance of optoelectronic devices, particularly field-effect transistor components (FETs). Here, the hybrid compound 2-amino-5-picoline tetrachloroferrate(iii) (2A5PFeCl(4)) was synthesised by using the slow evaporation solution growth method at room temperature. Structural, optical, and dielectric properties have been investigated. The 2A5PFeCl(4) compound crystallises in the monoclinic system (P2(1)/c space group). Its structure can be described as a successive layering of inorganic and organic parts. [FeCl(4)](−) tetrahedral anions and 2-amino-5-picolinium cations are connected by N–H⋯Cl and C–H⋯Cl hydrogen bonds. The optical absorption measurement confirms the semiconductor nature with a band gap of around 2.47 eV. Additionally, the structural and electronic properties of the title compound have been investigated theoretically through DFT calculations. At low frequencies, this material has significant dielectric constants (ε ∼10(6)). Furthermore, the high electrical conductivity, low dielectric loss at high frequencies, and high capacitance show that this new material has great dielectric potential in FET technologies. Due to their high permittivity, these compounds can be employed as gate dielectrics.
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spelling pubmed-101268222023-04-26 Crystal structure and optical characterization of a new hybrid compound, C(6)H(9)N(2)FeCl(4), with large dielectric constants for field-effect transistors Ghoudi, A. Ben Brahim, Kh. Ghalla, H. Lhoste, J. Auguste, S. Khirouni, K. Aydi, A. Oueslati, A. RSC Adv Chemistry Due to remarkable dielectric features, such as a large dielectric constant, strong electrical conductivity, high capacitance, and low dielectric loss, hybrid materials have lately seen a huge number of applications in the field of optoelectronics. These are critical characteristics that qualify the performance of optoelectronic devices, particularly field-effect transistor components (FETs). Here, the hybrid compound 2-amino-5-picoline tetrachloroferrate(iii) (2A5PFeCl(4)) was synthesised by using the slow evaporation solution growth method at room temperature. Structural, optical, and dielectric properties have been investigated. The 2A5PFeCl(4) compound crystallises in the monoclinic system (P2(1)/c space group). Its structure can be described as a successive layering of inorganic and organic parts. [FeCl(4)](−) tetrahedral anions and 2-amino-5-picolinium cations are connected by N–H⋯Cl and C–H⋯Cl hydrogen bonds. The optical absorption measurement confirms the semiconductor nature with a band gap of around 2.47 eV. Additionally, the structural and electronic properties of the title compound have been investigated theoretically through DFT calculations. At low frequencies, this material has significant dielectric constants (ε ∼10(6)). Furthermore, the high electrical conductivity, low dielectric loss at high frequencies, and high capacitance show that this new material has great dielectric potential in FET technologies. Due to their high permittivity, these compounds can be employed as gate dielectrics. The Royal Society of Chemistry 2023-04-25 /pmc/articles/PMC10126822/ /pubmed/37114024 http://dx.doi.org/10.1039/d3ra01239e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Ghoudi, A.
Ben Brahim, Kh.
Ghalla, H.
Lhoste, J.
Auguste, S.
Khirouni, K.
Aydi, A.
Oueslati, A.
Crystal structure and optical characterization of a new hybrid compound, C(6)H(9)N(2)FeCl(4), with large dielectric constants for field-effect transistors
title Crystal structure and optical characterization of a new hybrid compound, C(6)H(9)N(2)FeCl(4), with large dielectric constants for field-effect transistors
title_full Crystal structure and optical characterization of a new hybrid compound, C(6)H(9)N(2)FeCl(4), with large dielectric constants for field-effect transistors
title_fullStr Crystal structure and optical characterization of a new hybrid compound, C(6)H(9)N(2)FeCl(4), with large dielectric constants for field-effect transistors
title_full_unstemmed Crystal structure and optical characterization of a new hybrid compound, C(6)H(9)N(2)FeCl(4), with large dielectric constants for field-effect transistors
title_short Crystal structure and optical characterization of a new hybrid compound, C(6)H(9)N(2)FeCl(4), with large dielectric constants for field-effect transistors
title_sort crystal structure and optical characterization of a new hybrid compound, c(6)h(9)n(2)fecl(4), with large dielectric constants for field-effect transistors
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10126822/
https://www.ncbi.nlm.nih.gov/pubmed/37114024
http://dx.doi.org/10.1039/d3ra01239e
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