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High-energy quasi-solid-state supercapacitors enabled by carbon nanofoam from biowaste and high-voltage inorganic gel electrolyte

机译:来自Biowaste和高压无机凝胶电解质的碳纳米泡沫化的高能量准固态超级电容器

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Focusing on major issues of carbon materials like insufficient capacitance and limited energy supply in supercapacitors, we propose the strategy of developing advanced carbon and high-voltage inorganic gel electrolyte to efficiently solve these challenges. Firstly, the architecture of self-doped carbon nanofoam (A-CS650) is fabricated utilizing naturally rich cotton stalk through a facile procedure, which demonstrates exceptional performance contributed by synergistic features of large surface area, hierarchical porosity and rich defects. A-CS650 presents gravimetric and volumetric capacitances up to 282 F g(-1) and 234 F cm(-3) at 0.5 A g(-1), and a high-rate capacitance retention of 72.7% at a large rate of 100 A g(-1). With increasing the mass loading to 20 mg cm(-2), A-CS650 still retains good performance. Especially, by using unique CMC-Na/Na2SO4 gel electrolyte, 1.8 V A-CS650//A-CS650 quasi-solid-state supercapacitor, for the first time, is constructed, which displays an outstanding energy density of 22.6 Wh kg(-1), greatly exceeding the value in PVA/KOH electrolyte (7.3 Wh kg(-1)). Besides, this device exhibits considerable stability over 10000 cycles (81.6% capacitance retention). The insight from this work verifies great adaptability of biowaste-derived carbons toward supercapacitors, and may open a new technical platform to develop portable energy systems. (C) 2019 Elsevier Ltd. All rights reserved.
机译:专注于超级电容器的电容不足和有限能源供应等碳材料的主要问题,提出了开发先进的碳和高压无机凝胶电解质的策略,以有效地解决这些挑战。首先,通过容易程序使用自然棉尾部制造自掺杂碳纳米烃(A-CS650)的结构,这证明了通过大表面积,等级孔隙率和富缺陷的协同特征贡献的卓越性能。 A-CS650在0.5Ag(-1)的高达282V(-1)和234f cm(-3)的重量和容积电容,高速电容保持为72.7%,速度为100 g(-1)。随着将质量负荷的增加至20mg cm(-2),A-CS650仍保持良好的性能。特别是,通过使用独特的CMC-Na / Na 2 SO 4凝胶电解质,首次构造1.8V A-CS650 // A-CS650准固态超级电容器,其显示出22.6WHKG的优势密度( - 1),大大超过PVA / KOH电解质的值(7.3WH kg(-1))。此外,该装置具有超过10000个循环的相当稳定性(电容保留81.6%)。这项工作的洞察力验证了Biowaste衍生的碳对超级电容器的巨大适应性,并可开设新技术平台来开发便携式能源系统。 (c)2019年elestvier有限公司保留所有权利。

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