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High-Performance Supercapacitors from Niobium Nanowire Yarns

机译:铌纳米线纱的高性能超级电容器

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The large-ion-accessible surface area of carbon nanotubes (CNTs) and graphene sheets formed as yarns, forests, and films enables miniature high-performance supercapacitors with power densities exceeding those of electrolytics while achieving energy densities equaling those of batteries.1-7 Capacitance and energy density can be enhanced by depositing highly pseudocapacitive materials such as conductive polymers on them.3,8-15 Yarns formed from carbon nanotubes are proposed for use in wearable supercapacitors.3,16 In this work, we show that high power, energy density, and capacitance in yarn form are not unique to carbon materials, and we introduce niobium nanowires as an alternative. These yarns show higher capacitance and energy per volume and are stronger and 100 times more conductive than similarly spun carbon multiwalled nanotube (MWNT) and graphene yarns.6,17-22 The long niobium nanowires, formed by repeated extrusion and drawing,17 achieve device volumetric peak power and energy densities of 55 MW.m(-3) (55 W.cm(-3)) and 25 MJ.m(-3) (7 mWh.cm(-3)), 2 and 5 times higher than that for state-of-the-art CNT yarns, respectively.3 The capacitance per volume of Nb nanowire yarn is lower than the 158 MF.m(-3) (158 F.cm(-3)) reported for carbon-based materials such as reduced graphene oxide (RGO) and CNT wet-spun yarns,5 but the peak power and energy densities are 200 and 2 times higher, respectively.5 Achieving high power in long yarns is made possible by the high conductivity of the metal, and achievement of high energy density is possible thanks to the high internal surface area. No additional metal backing is needed, unlike for CNT yarns and supercapacitors in general, saving substantial space. As the yarn is infiltrated with pseudocapacitive materials such as poly(3,4-ethylenedioxythiophene) (PEDOT), the energy density is further increased to 10 MJ.m(-3) (2.8 mWh.cm(-3)). Similar to CNT yarns, niobium nanowire yarns are highly flexible and show potential for weaving into textiles and use in wearable devices.
机译:碳纳米管(CNT)和形成为纱线,森林和薄膜的石墨烯片具有大的离子可及表面积,可实现功率密度超过电解质的微型高性能超级电容器,同时实现与电池相同的能量密度。1-7可以通过在其上沉积高度假电容材料(例如导电聚合物)来提高电容和能量密度。3,8-15提出了由碳纳米管形成的纱线用于可穿戴式超级电容器。3,16我们在这项工作中表明,高功率,能量密度和纱线形式的电容并非碳材料独有,我们将铌纳米线作为替代材料。这些纱线显示出更高的电容和每单位体积的能量,并且比类似纺丝的碳纳米管和石墨烯纱线强得多,并且导电性高100倍。6,17-22通过反复挤压和拉伸形成的长铌纳米线,17实现了装置最高峰值功率和能量密度分别为55 MW.m(-3)(55 W.cm(-3))和25 MJ.m(-3)(7 mWh.cm(-3)),分别为2和5倍3 Nb纳米线纱线每体积的电容低于报告的碳纤维158 MF.m(-3)(158 F.cm(-3))。基材料,例如还原氧化石墨烯(RGO)和CNT湿法纺丝纱线5,但峰值功率和能量密度分别高200倍和2倍。5长丝纱线的高电导率使其成为可能金属,并且由于高的内表面积而有可能实现高能量密度。与一般的CNT纱线和超级电容器不同,不需要额外的金属背衬,可节省大量空间。随着纱线被伪电容材料(例如聚(3,4-乙撑二氧噻吩)(PEDOT))渗透,能量密度进一步提高到10 MJ.m(-3)(2.8 mWh.cm(-3))。类似于CNT纱线,铌纳米线纱线具有很高的柔韧性,并且具有织入纺织品和在可穿戴设备中使用的潜力。

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