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A Self-Branched Lamination of Hierarchical Patronite Nanoarchitectures on Carbon Fiber Cloth as Novel Electrode for lonic Liquid Electrolyte-Based High Energy Density Supercapacitors

机译:碳纤维布上层级爱国者纳米结构的自分支层压,作为基于离子液体电解质的高能量密度超级电容器的新型电极

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摘要

The developments of rationally designed binder-free metal chalcogenides decorated flexible electrodes are of paramount importance for advanced energy storage devices. Herein, binder-free patronite (VS4) flower-like nanostructures are facilely fabricated on a carbon cloth (CC) using a facile hydrothermal method for high-performance supercapacitors. The growth density and morphology of VS4 nanostructures on CC are also controlled by varying the concentrations of vanadium and sulfur sources along with the complexing agent in the growth solution. The optimal electrode with an appropriate growth concentration (VS4-CC@VS-3) demonstrates a considerable pseudocapacitance performance in the ionic liquid (IL) electrolyte (1-ethyl-3-methylimidazolium trifluoromethanesulfonate), with a high operating potential of 2 V. Utilizing VS4-CC@VS-3 as both positive and negative electrodes, the IL-based symmetric supercapacitor is assembled, which demonstrates a high areal capacitance of 536 mF cm(-2) (206 F g(-1)) and excellent cycling durability (93%) with superior energy and power densities of 74.4 mu Wh cm(-2) (28.6 Wh kg(-1)) and 10154 mu W cm(-2) (9340 W kg(-1)), respectively. As for the high energy storage performance, the device stably energizes various portable electronic applications for a long time, which make the fabricated composite material open up news for the fabrication of fabrics supported binder-free chalcogenides for high-performance energy storage devices.
机译:合理设计无粘结剂金属硫属化物装饰的柔性电极的开发对于先进的储能设备至关重要。在此,使用用于高性能超级电容器的简便水热方法,在碳布(CC)上容易地制造无粘合剂的磷灰石(VS4)花状纳米结构。通过改变生长溶液中钒和硫源以及络合剂的浓度,还可以控制VS4纳米结构在CC上的生长密度和形态。具有适当生长浓度的最佳电极(VS4-CC @ VS-3)在离子液体(IL)电解质(1-乙基-3-甲基咪唑三氟甲磺酸盐)中具有相当大的伪电容性能,具有2 V的高工作电势。利用VS4-CC @ VS-3作为正电极和负电极,组装了基于IL的对称超级电容器,这证明了536 mF cm(-2)(206 F g(-1))的高面电容和出色的循环性能耐用性(93%),卓越的能量和功率密度分别为74.4μWh·cm(-2)(28.6 Wh kg(-1))和10154μW·cm(-2)(9340 W kg(-1))。至于高能量存储性能,该装置可长时间稳定地为各种便携式电子应用提供能量,这使得所制造的复合材料为制造织物支撑的用于高性能能量存储装置的无粘结剂硫族化物提供了新闻。

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