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定制微孔碳中的孔排列以实现快速离子传输。

Tailoring the pore alignment for rapid ion transport in microporous carbons.

机构信息

School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, USA.

出版信息

J Am Chem Soc. 2010 Mar 17;132(10):3252-3. doi: 10.1021/ja910307x.

Abstract

The power density and charge-discharge time of electrical double layer capacitors are largely determined by how fast the electrolyte ions can travel within the carbon electrode particles. Our systematic studies using zeolite-templated carbons show that an enhancement in ion transport rate by more than 2 orders of magnitude is possible by minimizing the micropore tortuosity. Very uniform carbon deposition was achieved using a well-controlled process involving the decomposition of acetylene precursor at a reduced pressure of 10 Torr and under a constant flow rate of 100 sccm. Selected carbon samples with well-aligned, straight micropores demonstrate high specific capacitance of up to 300 F/g and outstanding frequency response of up to 10 Hz for 250 microm thick electrodes, indicating an attractive combination of high specific energy and high specific power in electrical double layer capacitors. Such properties are critical for many peak-power hungry applications, such as the leveling of subsecond disturbances in power lines. Our findings provide guidance for the optimal design of porous carbons with greatly improved power storage characteristics.

摘要

双电层电容器的功率密度和充放电时间在很大程度上取决于电解质离子在碳电极颗粒内的传输速度。我们通过使用沸石模板碳进行的系统研究表明,通过最小化微孔曲折度,可以将离子传输速率提高两个数量级以上。通过在 10 托的减压下和在 100 sccm 的恒定流速下分解乙炔前体,采用一种可控的工艺,可以实现非常均匀的碳沉积。选择具有良好排列、直微孔的碳样品,展示出高达 300 F/g 的高比电容和高达 10 Hz 的出色频率响应,对于 250 微米厚的电极而言,这表明在双电层电容器中具有高比能量和高比功率的吸引力组合。这些特性对于许多峰值功率需求应用至关重要,例如电力线上亚秒级干扰的平滑。我们的研究结果为具有大大改善的储能特性的多孔碳的优化设计提供了指导。

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