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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Micelle-induced assembly of graphene quantum dots into conductive porous carbon for high rate supercapacitor electrodes at high mass loadings
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Micelle-induced assembly of graphene quantum dots into conductive porous carbon for high rate supercapacitor electrodes at high mass loadings

机译:胶束诱导的石墨烯量子点组装成高批量载荷的高速超级电容器电极导电多孔碳

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摘要

Achieving high rate capability of porous carbon at high mass loading is important for developing advanced supercapacitors. But it still remains a big challenge because thick electrode causes severely reduced electric conductivity and blocked ion migration channels. Herein, we develop a micelle-induced assembly method to prepare conductive porous carbon through puzzling flexible graphene quantum dots (GQDs). The unique sp(2) hybridized GQDs ensure the product with a two times higher electric conductivity than the commercial activated carbon. The interconnected mesoporous structure promotes robust ion transport kinetics especially at high mass loadings. As supercapacitor electrode, it shows high capacitances of 315 and 170 F g(-1) at 1 and 100 A g(-1), respectively. Importantly, at a very high mass loading of 20 mg cm(-2), it shows a remarkably high areal capacitances of 2.8 F cm(-2) at 10 A g(-1), which is much better than other reported carbon materials. The symmetric supercapacitors show maximum energy densities of 9.21 and 6.45 Wh kg(-1) at the mass loadings of 2 mg cm(-2) and 20 mg cm(-2), respectively, revealing the structural advantage of GQD-puzzled porous carbon for practical applications. (C) 2020 Elsevier Ltd. All rights reserved.
机译:在高质量负载下实现多孔碳的高速率能力对于开发先进的超级电容器是重要的。但是,由于厚电极导致厚度降低的电导率和阻塞离子迁移通道仍然是一个很大的挑战。在此,我们开发一种胶束诱导的组装方法,通过令人困惑的柔性石墨烯量子点(GQD)制备导电多孔碳。独特的SP(2)杂交的GQDS确保产品具有比商业活性炭的两倍较高的电导率。互连的介孔结构促进鲁棒离子输送动力学,尤其是在高批量载荷处。作为超级电容器电极,它分别在1和100Ag(-1)下显示315和170V(-1)的高电容。重要的是,在20mg cm(-2)的非常高的质量负荷下,它显示出在10 a g(-1)的非常高的面积电容器,其比其他报告的碳材料更好。对称超级电容器分别显示出2mg cm(-2)和20mg cm(-2)的质量载量的最大能量密度为9.21和6.45WH kg(-1),揭示了GQD困惑的多孔碳的结构优势实际应用。 (c)2020 elestvier有限公司保留所有权利。

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    Xinjiang Univ Inst Appl Chem Key Lab Energy Mat Chem Minist Educ Key Lab Adv Funct Mat Urumqi 830046 Autonomous Regi Peoples R China;

    Xinjiang Univ Inst Appl Chem Key Lab Energy Mat Chem Minist Educ Key Lab Adv Funct Mat Urumqi 830046 Autonomous Regi Peoples R China;

    Beijing Univ Chem Technol State Key Lab Chem Resource Engn Beijing Key Lab Electrochem Proc &

    Technol Mat Beijing 100029 Peoples R China;

    Xinjiang Univ Inst Appl Chem Key Lab Energy Mat Chem Minist Educ Key Lab Adv Funct Mat Urumqi 830046 Autonomous Regi Peoples R China;

    Xinjiang Univ Inst Appl Chem Key Lab Energy Mat Chem Minist Educ Key Lab Adv Funct Mat Urumqi 830046 Autonomous Regi Peoples R China;

    Xinjiang Univ Inst Appl Chem Key Lab Energy Mat Chem Minist Educ Key Lab Adv Funct Mat Urumqi 830046 Autonomous Regi Peoples R China;

    Xinjiang Univ Inst Appl Chem Key Lab Energy Mat Chem Minist Educ Key Lab Adv Funct Mat Urumqi 830046 Autonomous Regi Peoples R China;

    Xinjiang Univ Inst Appl Chem Key Lab Energy Mat Chem Minist Educ Key Lab Adv Funct Mat Urumqi 830046 Autonomous Regi Peoples R China;

    Xinjiang Univ Inst Appl Chem Key Lab Energy Mat Chem Minist Educ Key Lab Adv Funct Mat Urumqi 830046 Autonomous Regi Peoples R China;

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  • 正文语种 eng
  • 中图分类 非金属元素及其无机化合物化学工业;化学;非金属材料;第Ⅳ族非金属元素及其无机化合物;
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