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Electrospun Benzimidazole-Based Polyimide Membrane for Supercapacitor Applications

A benzimidazole-containing diamine monomer was prepared via a simple one-step synthesis process. A two-step procedure involving polycondensation in the presence of aromatic dianhydrides (4,4′-oxydiphthalic anhydride, ODPA) followed by thermal imidization was then performed to prepare a benzimidazole...

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Autores principales: Lu, Yu-Hsiang, Wang, Yen-Zen, Tsai, Ming-Ying, Lin, Hong-Ping, Hsu, Chun-Han
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9607089/
https://www.ncbi.nlm.nih.gov/pubmed/36295721
http://dx.doi.org/10.3390/membranes12100961
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author Lu, Yu-Hsiang
Wang, Yen-Zen
Tsai, Ming-Ying
Lin, Hong-Ping
Hsu, Chun-Han
author_facet Lu, Yu-Hsiang
Wang, Yen-Zen
Tsai, Ming-Ying
Lin, Hong-Ping
Hsu, Chun-Han
author_sort Lu, Yu-Hsiang
collection PubMed
description A benzimidazole-containing diamine monomer was prepared via a simple one-step synthesis process. A two-step procedure involving polycondensation in the presence of aromatic dianhydrides (4,4′-oxydiphthalic anhydride, ODPA) followed by thermal imidization was then performed to prepare a benzimidazole-based polyimide (BI-PI). BI-PI membranes were fabricated using an electrospinning technique and were hot pressed for 30 min at 200 °C under a pressure of 50 kgf /cm(2). Finally, the hot-pressed membranes were assembled into supercapacitors, utilizing high-porosity-activated water chestnut shell biochar as the active material. The TGA results showed that the BI-PI polymer produced in the two-step synthesis process had a high thermal stability (T(d5%) = 527 °C). Moreover, the hot-press process reduced the pore size in the BI-PI membrane and improved the pore-size uniformity. The hot-press procedure additionally improved the mechanical properties of the BI-PI membrane, resulting in a high tensile modulus of 783 MPa and a tensile strength of 34.8 MPa. The cyclic voltammetry test results showed that the membrane had a specific capacitance of 121 F/g and a capacitance retention of 77%. By contrast, a commercial cellulose separator showed a specific capacitance value of 107 F/g and a capacitance retention of 49% under the same scanning conditions. Finally, the membrane showed both a small equivalent series resistance (R(s)) and a small interfacial resistance (R(ct)). Overall, the results showed that the BI-PI membrane has significant potential as a separator for high-performance supercapacitor applications.
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spelling pubmed-96070892022-10-28 Electrospun Benzimidazole-Based Polyimide Membrane for Supercapacitor Applications Lu, Yu-Hsiang Wang, Yen-Zen Tsai, Ming-Ying Lin, Hong-Ping Hsu, Chun-Han Membranes (Basel) Article A benzimidazole-containing diamine monomer was prepared via a simple one-step synthesis process. A two-step procedure involving polycondensation in the presence of aromatic dianhydrides (4,4′-oxydiphthalic anhydride, ODPA) followed by thermal imidization was then performed to prepare a benzimidazole-based polyimide (BI-PI). BI-PI membranes were fabricated using an electrospinning technique and were hot pressed for 30 min at 200 °C under a pressure of 50 kgf /cm(2). Finally, the hot-pressed membranes were assembled into supercapacitors, utilizing high-porosity-activated water chestnut shell biochar as the active material. The TGA results showed that the BI-PI polymer produced in the two-step synthesis process had a high thermal stability (T(d5%) = 527 °C). Moreover, the hot-press process reduced the pore size in the BI-PI membrane and improved the pore-size uniformity. The hot-press procedure additionally improved the mechanical properties of the BI-PI membrane, resulting in a high tensile modulus of 783 MPa and a tensile strength of 34.8 MPa. The cyclic voltammetry test results showed that the membrane had a specific capacitance of 121 F/g and a capacitance retention of 77%. By contrast, a commercial cellulose separator showed a specific capacitance value of 107 F/g and a capacitance retention of 49% under the same scanning conditions. Finally, the membrane showed both a small equivalent series resistance (R(s)) and a small interfacial resistance (R(ct)). Overall, the results showed that the BI-PI membrane has significant potential as a separator for high-performance supercapacitor applications. MDPI 2022-09-30 /pmc/articles/PMC9607089/ /pubmed/36295721 http://dx.doi.org/10.3390/membranes12100961 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lu, Yu-Hsiang
Wang, Yen-Zen
Tsai, Ming-Ying
Lin, Hong-Ping
Hsu, Chun-Han
Electrospun Benzimidazole-Based Polyimide Membrane for Supercapacitor Applications
title Electrospun Benzimidazole-Based Polyimide Membrane for Supercapacitor Applications
title_full Electrospun Benzimidazole-Based Polyimide Membrane for Supercapacitor Applications
title_fullStr Electrospun Benzimidazole-Based Polyimide Membrane for Supercapacitor Applications
title_full_unstemmed Electrospun Benzimidazole-Based Polyimide Membrane for Supercapacitor Applications
title_short Electrospun Benzimidazole-Based Polyimide Membrane for Supercapacitor Applications
title_sort electrospun benzimidazole-based polyimide membrane for supercapacitor applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9607089/
https://www.ncbi.nlm.nih.gov/pubmed/36295721
http://dx.doi.org/10.3390/membranes12100961
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