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Mesophase Pitch-Derived Carbons with High Electronic and Ionic Conductivity Levels for Electric Double-Layer Capacitors

[Image: see text] We develop a temperature-programmed pretreatment strategy for converting aliphatic-rich petroleum pitch into a mesophase framework, which can then be activated using KOH to produce high-performance carbons for electric double-layer capacitors (EDLCs). In the pretreatment of pitch a...

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Autores principales: Wu, Pin-I, Hsu, Yu-Tung, Tseng, Yu-Cheng, Subramani, Ramesh, Chen, Yan-Shi, Chang, Chia-Lin, Leu, Goa-Shee, Teng, Hsisheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6796889/
https://www.ncbi.nlm.nih.gov/pubmed/31646239
http://dx.doi.org/10.1021/acsomega.9b02243
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author Wu, Pin-I
Hsu, Yu-Tung
Tseng, Yu-Cheng
Subramani, Ramesh
Chen, Yan-Shi
Chang, Chia-Lin
Leu, Goa-Shee
Teng, Hsisheng
author_facet Wu, Pin-I
Hsu, Yu-Tung
Tseng, Yu-Cheng
Subramani, Ramesh
Chen, Yan-Shi
Chang, Chia-Lin
Leu, Goa-Shee
Teng, Hsisheng
author_sort Wu, Pin-I
collection PubMed
description [Image: see text] We develop a temperature-programmed pretreatment strategy for converting aliphatic-rich petroleum pitch into a mesophase framework, which can then be activated using KOH to produce high-performance carbons for electric double-layer capacitors (EDLCs). In the pretreatment of pitch at an optimal temperature, both the temperature ramp and holding time influence the mesophase structure, which governs the pore structure and crystallinity of the resulting activated carbon. High carbon microporosity is beneficial to capacitance maximization but detrimental to ion transport. To resolve this problem, we develop a multistep ramp incorporating aliphatic species into the aromatic framework during mesophase formation. This incorporation process produces a mesophase framework that can be activated to form carbons with high crystallinity, thereby enhancing electronic conductivity and hierarchical porosity, which improves ionic conductivity. The resulting carbon electrode is used to assemble a symmetric EDLC, which exhibits a capacitance of 160 F g(–1) and excellent high-rate retention in a propylene carbonate solution of N,N-diethyl-N-methylethanaminium tetrafluoroborate. The EDLC delivers a superior specific energy of 40 Wh kg(–1) (based on the total carbon mass) within a voltage range of 0–2.7 V and sustained a high energy of 24 Wh kg(–1) at a high power of 50 kW kg(–1). The findings of this study demonstrate that incorporating aliphatic species into aromatic mesophase frameworks plays a crucial role in regulating the crystallinity and pore structure of pitch-derived carbons for charge storage.
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spelling pubmed-67968892019-10-23 Mesophase Pitch-Derived Carbons with High Electronic and Ionic Conductivity Levels for Electric Double-Layer Capacitors Wu, Pin-I Hsu, Yu-Tung Tseng, Yu-Cheng Subramani, Ramesh Chen, Yan-Shi Chang, Chia-Lin Leu, Goa-Shee Teng, Hsisheng ACS Omega [Image: see text] We develop a temperature-programmed pretreatment strategy for converting aliphatic-rich petroleum pitch into a mesophase framework, which can then be activated using KOH to produce high-performance carbons for electric double-layer capacitors (EDLCs). In the pretreatment of pitch at an optimal temperature, both the temperature ramp and holding time influence the mesophase structure, which governs the pore structure and crystallinity of the resulting activated carbon. High carbon microporosity is beneficial to capacitance maximization but detrimental to ion transport. To resolve this problem, we develop a multistep ramp incorporating aliphatic species into the aromatic framework during mesophase formation. This incorporation process produces a mesophase framework that can be activated to form carbons with high crystallinity, thereby enhancing electronic conductivity and hierarchical porosity, which improves ionic conductivity. The resulting carbon electrode is used to assemble a symmetric EDLC, which exhibits a capacitance of 160 F g(–1) and excellent high-rate retention in a propylene carbonate solution of N,N-diethyl-N-methylethanaminium tetrafluoroborate. The EDLC delivers a superior specific energy of 40 Wh kg(–1) (based on the total carbon mass) within a voltage range of 0–2.7 V and sustained a high energy of 24 Wh kg(–1) at a high power of 50 kW kg(–1). The findings of this study demonstrate that incorporating aliphatic species into aromatic mesophase frameworks plays a crucial role in regulating the crystallinity and pore structure of pitch-derived carbons for charge storage. American Chemical Society 2019-10-03 /pmc/articles/PMC6796889/ /pubmed/31646239 http://dx.doi.org/10.1021/acsomega.9b02243 Text en Copyright © 2019 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Wu, Pin-I
Hsu, Yu-Tung
Tseng, Yu-Cheng
Subramani, Ramesh
Chen, Yan-Shi
Chang, Chia-Lin
Leu, Goa-Shee
Teng, Hsisheng
Mesophase Pitch-Derived Carbons with High Electronic and Ionic Conductivity Levels for Electric Double-Layer Capacitors
title Mesophase Pitch-Derived Carbons with High Electronic and Ionic Conductivity Levels for Electric Double-Layer Capacitors
title_full Mesophase Pitch-Derived Carbons with High Electronic and Ionic Conductivity Levels for Electric Double-Layer Capacitors
title_fullStr Mesophase Pitch-Derived Carbons with High Electronic and Ionic Conductivity Levels for Electric Double-Layer Capacitors
title_full_unstemmed Mesophase Pitch-Derived Carbons with High Electronic and Ionic Conductivity Levels for Electric Double-Layer Capacitors
title_short Mesophase Pitch-Derived Carbons with High Electronic and Ionic Conductivity Levels for Electric Double-Layer Capacitors
title_sort mesophase pitch-derived carbons with high electronic and ionic conductivity levels for electric double-layer capacitors
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6796889/
https://www.ncbi.nlm.nih.gov/pubmed/31646239
http://dx.doi.org/10.1021/acsomega.9b02243
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