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

机译:高电子中间相沥青衍生碳双层电容器的电导率和离子电导率水平

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摘要

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 superiorspecific energy of 40 Wh kg–1 (based on the totalcarbon mass) within a voltage range of 0–2.7 V and sustaineda high energy of 24 Wh kg–1 at a high power of 50kW kg–1. The findings of this study demonstratethat incorporating aliphatic species into aromatic mesophase frameworksplays a crucial role in regulating the crystallinity and pore structureof pitch-derived carbons for charge storage.
机译:我们开发了一种温度编程的预处理策略,可将富含脂肪族化合物的石油沥青转化为中间相骨架,然后可以使用KOH对其进行活化,以生产用于双电层电容器(EDLC)的高性能碳。在最佳温度下进行沥青预处理时,温度上升和保持时间都会影响中间相结构,中间相结构控制孔结构和所得活性炭的结晶度。高碳微孔率有利于电容最大化,但不利于离子迁移。为了解决这个问题,我们开发了在中间相形成过程中将脂肪族物质掺入芳族骨架的多步斜坡。该掺入过程产生中间相骨架,该中间相骨架可以被活化以形成具有高结晶度的碳,从而增强电子电导率和分级孔隙率,从而改善离子电导率。所得的碳电极用于组装对称的EDLC,该电容表现出160 F g –1 的电容,并在N,N-二乙基-N-甲基乙胺的碳酸亚丙酯溶液中具有极高的保留率。四氟硼酸盐。 EDLC提供卓越的40 Wh kg –1 的比能(基于总能量碳质量)在0–2.7 V的电压范围内并持续在50的高功率下具有24 Wh kg –1 的高能量kW kg –1 。这项研究的结果表明将脂族物质引入芳族中间相骨架的过程在调节结晶度和孔结构中起关键作用沥青来源的碳用于电荷存储。

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