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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Realizing battery-like energy density with asymmetric supercapacitors achieved by using highly conductive three-dimensional graphene current collectors
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Realizing battery-like energy density with asymmetric supercapacitors achieved by using highly conductive three-dimensional graphene current collectors

机译:通过使用高导电三维石墨烯集电器实现的不对称超级电容器实现电池状能量密度

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摘要

We report a three-dimensional graphene network decorated with nickel nanoparticles as a current collector to achieve outstanding performance in Ni(OH)(2)-based supercapacitors with excellent energy density. A cost-efficient and single-step fabrication method creates nickel-particle decorated three-dimensional graphene networks (Ni-GNs) with an excellent electrical conductivity of 107 S m(-1) and a surface area of 16.4 m(2) g(-1) that are superior to those of carbon alternatives and commercial 3D-Ni foam, respectively. The supercapacitor in which Ni(OH)(2) active materials are deposited on Ni-GNs exhibited an outstanding capacitance value of 3179 F g(-1) at 10 A g(-1) in a three-electrode system and 90% of capacitance retention after 10 000 cycles. Furthermore, it showed an outstanding energy density of 197.5 W h kg(-1) at a power density of 815.5 W kg(-1) when tested in a two-electrode system. To the best of our knowledge, our device realized the world record value of energy density with a high rate capability and good cycle stability among Ni(OH) 2-based supercapacitors. The excellent electrical properties of easily synthesized Ni-GNs as the ideal current collector clearly suggest a straightforward way to achieve great performance supercapacitors with both high energy density and power density.
机译:我们报道了一种用镍纳米粒子装饰的三维石墨烯网络,作为集电器,以实现具有优异能量密度的基于Ni(OH)(2)的超级电容器的出色性能。一种成本效益和单步制造方法,产生镍粒子的镀镍的三维石墨烯网络(Ni-GNS),其电导率优异为107s m(-1),表面积为16.4 m(2)g( -1)分别优于碳替代品和商业3D-Ni泡沫。其中Ni(OH)(2)活性材料沉积在Ni-GNS上的超级电容器在三个电极系统中在10Ag(-1)下表现出3179 f G(-1)的优异电容值,90% 10 000个循环后的电容保留。此外,当在双电极系统中测试时,它以815.5Wkg(-1)的功率密度显示出的高能量密度为197.5WH kg(-1)。据我们所知,我们的装置实现了能量密度的世界纪录值,并在Ni(OH)2的超级电容器中具有高速率能力和良好的循环稳定性。易于合成的Ni-GNS的优异电气性能作为理想的集电器显然提出了一种具有高能量密度和功率密度的良好性能超级电容器的直接途径。

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