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A sustainable one-step strategy for highly graphitized capacitive carbons with hierarchical micro–meso–macro porosity

Large micropore surface area, superior electrical conductivity and suitable pore size are simultaneously desired characteristics for high-performance capacitive carbons. However, these desired features tend to be mutually competing, and are generally difficult to integrate into a single carbon. Cons...

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Detalles Bibliográficos
Autores principales: Liu, Huili, Su, Suisui, Wang, Heng, Wang, Miaomiao, Zhang, Shouren, Chang, Binbin, Yang, Baocheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9416981/
https://www.ncbi.nlm.nih.gov/pubmed/36133678
http://dx.doi.org/10.1039/d1na00856k
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author Liu, Huili
Su, Suisui
Wang, Heng
Wang, Miaomiao
Zhang, Shouren
Chang, Binbin
Yang, Baocheng
author_facet Liu, Huili
Su, Suisui
Wang, Heng
Wang, Miaomiao
Zhang, Shouren
Chang, Binbin
Yang, Baocheng
author_sort Liu, Huili
collection PubMed
description Large micropore surface area, superior electrical conductivity and suitable pore size are simultaneously desired characteristics for high-performance capacitive carbons. However, these desired features tend to be mutually competing, and are generally difficult to integrate into a single carbon. Considering this challenge, we developed a sustainable, less time-demanding, pollution-free strategy to construct highly graphitized porous carbon (GPC) by one-step heat-treatment. This approach achieves the need of the abovementioned characteristics for capacitive carbons, wherein potassium ferrate works as both an activating agent and graphitization catalyst to achieve synchronous hierarchical porosity and graphitization of wasted natural wood, and the resultant carbon materials possess a large micropore surface area of 870.4 m(2) g(−1), a highly graphitic carbon skeleton and a well-interconnected micro–meso–macropore structure. The assembled GPC-based symmetrical capacitors exhibited a satisfactory capacitive performance in different aqueous electrolytes (H(2)SO(4), KOH and Na(2)SO(4)), including high specific capacitance, prominent rate capability, satisfactory energy density and good cycle stability. Meanwhile, we compared the contributions of porosity and the graphitized structure to capacitive performance, and porosity was dominant in determining capacitance and the graphitized skeleton had a positive effect in enhancing the capacitive performance. In addition, we established the relationship between the structure of GPC and electrochemical capacitive performance in different aqueous electrolytes, providing a valuable reference for GPC-based supercapacitors in different practical applications. More importantly, this strategy holds great promise to sustainably convert biowaste to high-added-value capacitive carbons for advanced energy storage applications in the future.
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spelling pubmed-94169812022-09-20 A sustainable one-step strategy for highly graphitized capacitive carbons with hierarchical micro–meso–macro porosity Liu, Huili Su, Suisui Wang, Heng Wang, Miaomiao Zhang, Shouren Chang, Binbin Yang, Baocheng Nanoscale Adv Chemistry Large micropore surface area, superior electrical conductivity and suitable pore size are simultaneously desired characteristics for high-performance capacitive carbons. However, these desired features tend to be mutually competing, and are generally difficult to integrate into a single carbon. Considering this challenge, we developed a sustainable, less time-demanding, pollution-free strategy to construct highly graphitized porous carbon (GPC) by one-step heat-treatment. This approach achieves the need of the abovementioned characteristics for capacitive carbons, wherein potassium ferrate works as both an activating agent and graphitization catalyst to achieve synchronous hierarchical porosity and graphitization of wasted natural wood, and the resultant carbon materials possess a large micropore surface area of 870.4 m(2) g(−1), a highly graphitic carbon skeleton and a well-interconnected micro–meso–macropore structure. The assembled GPC-based symmetrical capacitors exhibited a satisfactory capacitive performance in different aqueous electrolytes (H(2)SO(4), KOH and Na(2)SO(4)), including high specific capacitance, prominent rate capability, satisfactory energy density and good cycle stability. Meanwhile, we compared the contributions of porosity and the graphitized structure to capacitive performance, and porosity was dominant in determining capacitance and the graphitized skeleton had a positive effect in enhancing the capacitive performance. In addition, we established the relationship between the structure of GPC and electrochemical capacitive performance in different aqueous electrolytes, providing a valuable reference for GPC-based supercapacitors in different practical applications. More importantly, this strategy holds great promise to sustainably convert biowaste to high-added-value capacitive carbons for advanced energy storage applications in the future. RSC 2022-01-12 /pmc/articles/PMC9416981/ /pubmed/36133678 http://dx.doi.org/10.1039/d1na00856k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Liu, Huili
Su, Suisui
Wang, Heng
Wang, Miaomiao
Zhang, Shouren
Chang, Binbin
Yang, Baocheng
A sustainable one-step strategy for highly graphitized capacitive carbons with hierarchical micro–meso–macro porosity
title A sustainable one-step strategy for highly graphitized capacitive carbons with hierarchical micro–meso–macro porosity
title_full A sustainable one-step strategy for highly graphitized capacitive carbons with hierarchical micro–meso–macro porosity
title_fullStr A sustainable one-step strategy for highly graphitized capacitive carbons with hierarchical micro–meso–macro porosity
title_full_unstemmed A sustainable one-step strategy for highly graphitized capacitive carbons with hierarchical micro–meso–macro porosity
title_short A sustainable one-step strategy for highly graphitized capacitive carbons with hierarchical micro–meso–macro porosity
title_sort sustainable one-step strategy for highly graphitized capacitive carbons with hierarchical micro–meso–macro porosity
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9416981/
https://www.ncbi.nlm.nih.gov/pubmed/36133678
http://dx.doi.org/10.1039/d1na00856k
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