首页> 外文期刊>Journal of Energy Storage >Binder-free reduced graphene oxide 3D structures based on ultra large graphene oxide sheets: High performance green micro-supercapacitor using NaCl electrolyte
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Binder-free reduced graphene oxide 3D structures based on ultra large graphene oxide sheets: High performance green micro-supercapacitor using NaCl electrolyte

机译:基于超大氧化石墨烯片的无粘结剂的还原氧化石墨烯3D结构:使用NaCl电解质的高性能绿色微型超级电容器

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We here report a breakthrough in the fabrication of green high performance symmetric supercapacitors. Our system is based on binder-free reduced graphene oxide foam electrodes using NaCl aqueous electrolyte (1 M). A liquid crystal ultra large graphene oxide sheets dispersion in water was used for the fabrication of foams through freeze drying. Proper initial self-assemblage/alignment of graphene oxide (GO) sheets of the aqueous mixture on the substrate and exposure to vacuum sublimation conditions resulted in a unique 3D open structure. A novel technique based on nitrogen adsorption has been applied for the first time to estimate the average wall thickness. The combination of the use of ultra large GO, freeze drying, and employment of NaCl electrolyte resulted in an exceptionally high capacitance of 618.15 F g(-1) at a current density of 3.0 A g(-1). This is the highest value ever reported for a pure carbonaceous electrode in a two electrode system. Although electrical double layer storage is dominant, our device exhibits a high capacitance typical of pseudo capacitive systems and does not suffer from a limited cycle life. Another excellent feature of the novel supercapacitor is the persistence of high capacitive behavior (132.13 F g(-1)) even at a high charge/discharge rate of 51.5 A g(-1). This is mainly attributed to the amphiphilic character of the reduced graphene oxide sheets resulting from the high percentage of the carbonyl/carboxyl surface residual oxygenate groups which impart an enhanced wetting of the surface by the electrolyte in addition to inducing a higher concentration of Na+ and Cl- ions in the electrical double layers. Our optimum combination of energy and power densities is 42.92 W kg(-1) and 1.35 kWh kg(-1), respectively.
机译:我们在这里报告了绿色高性能对称超级电容器制造方面的突破。我们的系统基于使用NaCl水性电解质(1 M)的无粘结剂还原氧化石墨烯泡沫电极。将液晶超大型氧化石墨烯片分散在水中用于通过冷冻干燥制备泡沫。水性混合物在基材上的氧化石墨烯(GO)片材的正确初始自组装/排列以及在真空升华条件下的暴露会导致独特的3D开放结构。首次应用了基于氮吸附的新技术来估计平均壁厚。超大GO的使用,冷冻干燥和使用NaCl电解质的组合在电流密度为3.0 A g(-1)时具有618.15 F g(-1)的极高电容。这是两电极系统中纯碳质电极报道的最高值。尽管双电层存储占主导地位,但我们的设备展现出伪电容系统所特有的高电容,并且不受循环寿命的限制。新型超级电容器的另一个出色特性是即使在51.5 A g(-1)的高充电/放电速率下,仍具有高电容性能(132.13 F g(-1))的持久性。这主要归因于羰基/羧基表面残留的含氧基团的比例高导致还原的氧化石墨烯片材具有两亲特性,该羰基/羧基表面残留的含氧基团除了诱导较高浓度的Na +和Cl外,还增强了电解质对表面的润湿性-双电层中的离子。我们的能量和功率密度最佳组合分别为42.92 W kg(-1)和1.35 kWh kg(-1)。

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