Hierarchically porous carbon derived from potassium-citrate-loaded poplar catkin for high performance supercapacitors.
Identifieur interne : 000356 ( Main/Exploration ); précédent : 000355; suivant : 000357Hierarchically porous carbon derived from potassium-citrate-loaded poplar catkin for high performance supercapacitors.
Auteurs : Xiaodong Luo [République populaire de Chine] ; Shaolong Li [République populaire de Chine] ; Haiyang Xu [République populaire de Chine] ; Xuhui Zou [République populaire de Chine] ; Yuan Wang [République populaire de Chine] ; Jun Cheng [République populaire de Chine] ; Xi Li [République populaire de Chine] ; Zhangfeng Shen [République populaire de Chine] ; Yangang Wang [République populaire de Chine] ; Lifeng Cui [République populaire de Chine]Source :
- Journal of colloid and interface science [ 1095-7103 ] ; 2020.
Abstract
A simple one-step preparation of biomass derived carbon materials with hierarchical pore structure for supercapacitor application is proposed. Briefly, potassium citrate is loaded onto poplar catkin, a forestry and agricultural residue, for carbonization at different temperature (750-900 ℃). With the confined effect of poplar catkin and pore-forming role of potassium compounds, interconnected carbon networks combining of macropores, small mesopores and micropores are obtained. The product carbonized at 850 ℃ (S-850) processes large surface area of 2186 m2/g with two main micropore ranges distributed in 0.5-0.7 nm and 0.7-1.5 nm, and the sample of S-900 processes relatively high electrical conductivity because of the high degree of graphitization. The electrodes based on these carbon materials show main electrical double-layer capacitors with small part of pseudo-capacitors due to O-doping. The S-850 sample displays superior specific capacity at low charge-discharge current density while the electrode based on S-900 shows high specific capacity under high current density. The symmetrical devices based on S-850 give a superb stability and high energy and power densities in alkaline electrolyte. Within a voltage window of 1.4 V, the device can deliver a 13.3 Wh/kg energy density at a power density of 720 W/kg and maintain 7.8 Wh/kg at 14040 W/kg.
DOI: 10.1016/j.jcis.2020.08.088
PubMed: 32927174
Affiliations:
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<front><div type="abstract" xml:lang="en">A simple one-step preparation of biomass derived carbon materials with hierarchical pore structure for supercapacitor application is proposed. Briefly, potassium citrate is loaded onto poplar catkin, a forestry and agricultural residue, for carbonization at different temperature (750-900 ℃). With the confined effect of poplar catkin and pore-forming role of potassium compounds, interconnected carbon networks combining of macropores, small mesopores and micropores are obtained. The product carbonized at 850 ℃ (S-850) processes large surface area of 2186 m<sup>2</sup>
/g with two main micropore ranges distributed in 0.5-0.7 nm and 0.7-1.5 nm, and the sample of S-900 processes relatively high electrical conductivity because of the high degree of graphitization. The electrodes based on these carbon materials show main electrical double-layer capacitors with small part of pseudo-capacitors due to O-doping. The S-850 sample displays superior specific capacity at low charge-discharge current density while the electrode based on S-900 shows high specific capacity under high current density. The symmetrical devices based on S-850 give a superb stability and high energy and power densities in alkaline electrolyte. Within a voltage window of 1.4 V, the device can deliver a 13.3 Wh/kg energy density at a power density of 720 W/kg and maintain 7.8 Wh/kg at 14040 W/kg.</div>
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<Abstract><AbstractText>A simple one-step preparation of biomass derived carbon materials with hierarchical pore structure for supercapacitor application is proposed. Briefly, potassium citrate is loaded onto poplar catkin, a forestry and agricultural residue, for carbonization at different temperature (750-900 ℃). With the confined effect of poplar catkin and pore-forming role of potassium compounds, interconnected carbon networks combining of macropores, small mesopores and micropores are obtained. The product carbonized at 850 ℃ (S-850) processes large surface area of 2186 m<sup>2</sup>
/g with two main micropore ranges distributed in 0.5-0.7 nm and 0.7-1.5 nm, and the sample of S-900 processes relatively high electrical conductivity because of the high degree of graphitization. The electrodes based on these carbon materials show main electrical double-layer capacitors with small part of pseudo-capacitors due to O-doping. The S-850 sample displays superior specific capacity at low charge-discharge current density while the electrode based on S-900 shows high specific capacity under high current density. The symmetrical devices based on S-850 give a superb stability and high energy and power densities in alkaline electrolyte. Within a voltage window of 1.4 V, the device can deliver a 13.3 Wh/kg energy density at a power density of 720 W/kg and maintain 7.8 Wh/kg at 14040 W/kg.</AbstractText>
<CopyrightInformation>Copyright © 2020 Elsevier Inc. All rights reserved.</CopyrightInformation>
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<AuthorList CompleteYN="Y"><Author ValidYN="Y"><LastName>Luo</LastName>
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<Initials>X</Initials>
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<Day>27</Day>
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<Keyword MajorTopicYN="N">Hierarchical porous carbon materials</Keyword>
<Keyword MajorTopicYN="N">Poplar catkin</Keyword>
<Keyword MajorTopicYN="N">Supercapacitor</Keyword>
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<CoiStatement>Declaration of Competing Interest The authors declared that there is no conflict of interest.</CoiStatement>
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<name sortKey="Cheng, Jun" sort="Cheng, Jun" uniqKey="Cheng J" first="Jun" last="Cheng">Jun Cheng</name>
<name sortKey="Cui, Lifeng" sort="Cui, Lifeng" uniqKey="Cui L" first="Lifeng" last="Cui">Lifeng Cui</name>
<name sortKey="Li, Shaolong" sort="Li, Shaolong" uniqKey="Li S" first="Shaolong" last="Li">Shaolong Li</name>
<name sortKey="Li, Xi" sort="Li, Xi" uniqKey="Li X" first="Xi" last="Li">Xi Li</name>
<name sortKey="Shen, Zhangfeng" sort="Shen, Zhangfeng" uniqKey="Shen Z" first="Zhangfeng" last="Shen">Zhangfeng Shen</name>
<name sortKey="Wang, Yangang" sort="Wang, Yangang" uniqKey="Wang Y" first="Yangang" last="Wang">Yangang Wang</name>
<name sortKey="Wang, Yuan" sort="Wang, Yuan" uniqKey="Wang Y" first="Yuan" last="Wang">Yuan Wang</name>
<name sortKey="Xu, Haiyang" sort="Xu, Haiyang" uniqKey="Xu H" first="Haiyang" last="Xu">Haiyang Xu</name>
<name sortKey="Zou, Xuhui" sort="Zou, Xuhui" uniqKey="Zou X" first="Xuhui" last="Zou">Xuhui Zou</name>
</country>
</tree>
</affiliations>
</record>
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