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热还原氟石墨作为超级电容器的高效电极材料。

Thermally reduced fluorographenes as efficient electrode materials for supercapacitors.

机构信息

Regional Centre for Advanced Technologies and Materials, Department of Experimental Physics, Faculty of Science, Palacký University Olomouc, 17. listopadu 1192/12, 771 46 Olomouc, Czech Republic.

Regional Centre for Advanced Technologies and Materials, Department of Physical Chemistry, Faculty of Science, Palacký University Olomouc, 17. listopadu 1192/12, 771 46 Olomouc, Czech Republic.

出版信息

Nanoscale. 2019 Nov 28;11(44):21364-21375. doi: 10.1039/c9nr07255a. Epub 2019 Nov 1.

DOI:10.1039/c9nr07255a
PMID:31674615
Abstract

There is an urgent need for a simple and up-scalable method for the preparation of supercapacitor electrode materials due to increasing global energy consumption worldwide. We have discovered that fluorographene exhibits great potential for the development of new kinds of supercapacitors aimed at practical applications. We have shown that time control of isothermal reduction of fluorographite at 450 °C under a hydrogen atmosphere led to the fine-tuning of fluorine content and electronic properties of the resulting fluorographene derivatives. Charge transfer resistances (R) of the thermally reduced fluorographenes (TRFGs) were decreased with respect to the pristine fluorographene; however, the Rvs. time-of-reduction plot showed a v-shaped profile. The specific capacitance vs. time-of-reduction of TRFG followed the v-shaped trend, which could be the result of the decreasing content of sp carbons and increasing content of structural defects. An optimized material exhibited values of specific capacitance up to 539 F g recorded at a current density of 0.25 A g and excellent cycling durability with 100% specific capacitance retention after 1500 cycles in a three-electrode configuration and 96.7% of specific capacitance after 30 000 cycles in a two-electrode setup.

摘要

由于全球能源消耗的增加,迫切需要一种简单且可扩展的方法来制备超级电容器电极材料。我们发现氟石墨烯在开发针对实际应用的新型超级电容器方面具有巨大的潜力。我们已经表明,在 450°C 下于氢气气氛中控制氟石墨的等温还原时间,可以精细调节所得氟石墨烯衍生物的氟含量和电子性质。与原始氟石墨烯相比,经热还原的氟石墨烯(TRFG)的电荷转移电阻(R)降低;然而,R 与还原时间的关系图呈现出 V 形轮廓。TRFG 的比电容与还原时间的关系遵循 V 形趋势,这可能是由于 sp 碳含量的降低和结构缺陷含量的增加所致。优化后的材料在电流密度为 0.25 A g 时表现出高达 539 F g 的比电容,并且在三电极配置中经过 1500 次循环后具有 100%的比电容保持率,在两电极装置中经过 30000 次循环后仍具有 96.7%的比电容。

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