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Nanofoaming to Boost the Electrochemical Performance of Ni@Ni(OH)(2) Nanowires for Ultrahigh Volumetric Supercapacitors

机译:纳米发泡可增强Ni @ Ni(OH)(2)纳米线在超高容量超级电容器中的电化学性能

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Three-dimensional free-standing film electrodes have aroused great interest for energy storage devices. However, small volumetric capacity and low operating voltage limit their practical application for large energy storage applications. Herein, a facile and novel nanofoaming process was demonstrated to boost the volumetric electrochemical capacitance of the devices via activation of Ni nanowires to form ultrathin nanosheets and porous nanostructures. The as-designed free-standing Ni@Ni(OH)(2) film electrodes display a significantly enhanced volumetric capacity (462 C/cm(3) at 0.5 A/cm(3)) and excellent cycle stability. Moreover, the as developed hybrid supercapacitor employed Ni@Ni(OH)(2) film as positive electrode and graphene-carbon nanotube film as negative electrode exhibits a high volumetric capacitance of 95 F/cm(3) (at 0.25 A/cm(3)) and excellent cycle performance (only 14% capacitance reduction for 4500 cycles). Furthermore, the volumetric energy density can reach 33.9 mWh/cm(3), which is much higher than that of most thin fihn lithium batteries (1-10 mWh/cm(3)). This work gives an insight for designing high-volume three-dimensional electrodes and paves a new way to construct binder-free film electrode for high-performance hybrid supercapacitor applications.
机译:三维自立式薄膜电极引起了储能装置的极大兴趣。但是,小体积容量和低工作电压限制了它们在大型储能应用中的实际应用。在本文中,证明了一种简便而新颖的纳米发泡工艺可通过激活镍纳米线以形成超薄纳米片和多孔纳米结构来提高器件的体积电化学电容。设计的自立式Ni @ Ni(OH)(2)薄膜电极显示出显着增强的体积容量(在0.5 A / cm(3)时为462 C / cm(3))和出色的循环稳定性。此外,已开发的混合超级电容器采用Ni @ Ni(OH)(2)膜作为正电极,而石墨烯-碳纳米管膜作为负电极表现出95 F / cm(3)的高体积电容(在0.25 A / cm( 3))和出色的循环性能(4500次循环仅减少14%的电容)。此外,体积能量密度可以达到33.9 mWh / cm(3),远高于大多数薄型锂电池的能量密度(1-10 mWh / cm(3))。这项工作为设计大体积三维电极提供了见识,并为构造用于高性能混合超级电容器应用的无粘合剂薄膜电极铺平了新途径。

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