...
首页> 外文期刊>ACS nano >Wearable Fabrics with Self-Branched Bimetallic Layered Double Hydroxide Coaxial Nanostructures for Hybrid Supercapacitors
【24h】

Wearable Fabrics with Self-Branched Bimetallic Layered Double Hydroxide Coaxial Nanostructures for Hybrid Supercapacitors

机译:具有自分枝双金属层状双氢氧化物同轴纳米结构的可穿戴织物,用于杂交超级电容器

获取原文
获取原文并翻译 | 示例

摘要

We report a flexible battery-type electrode based on binder-free nickel cobalt layered double hydroxide nanosheets adhered to nickel cobalt layered double hydroxide nanoflake arrays on nickel fabric (NC LDH NFAs@NSs/Ni fabric) using facile and eco-friendly synthesis methods. Herein, we utilized discarded polyester fabric as a cost-effective substrate for in situ electroless deposition of Ni, which exhibited good flexibility, light weight, and high conductivity. Subsequently, the vertically aligned NC LDH NFAs were grown on Ni fabric by means of a hot-air oven-based method, and fluffy-like NC LDH NS branches are further decorated on NC LDH NFAs by a simple electrochemical deposition method. The as-prepared core shell-like nanoarchitectures improve the specific surface area and electrochemical activity, which provides the ideal pathways for electrolyte diffusion and charge transportation. When the electrochemical performance was tested in 1 M KOH aqueous solution, the core-shell-like NC LDH NFAs@NSs/Ni fabric electrode liberated a maximum areal capacity of 536.96 mu Ah/cm(2) at a current density of 2 mA/cm(2) and excellent rate capability of 78.3% at 30 mA/cm(2) (420.5 mu Ah/cm(2)) with a good cycling stability. Moreover, a fabric-based hybrid supercapacitor (SC) was assembled, which achieves a stable operational potential window of 1.6 V, a large areal capacitance of 1147.23 mF/cm(2) at 3 mA/cm(2), and a high energy density of 0.392 mWh/cm(2) at a power density of 2.353 mW/cm(2). Utilizing such high energy storage abilities and flexible properties, the fabricated hybrid SC operated the wearable digital watch and electric motor fan for real-time applications.
机译:我们报告了一种柔性电池型电极,基于无粘合剂的镍钴层双氢氧化物纳米蛋白酶,粘附在镍织物(NC LDH NFAS @ NSS / Ni Fabric)上粘附在镍钴层双氢氧化物纳米铝饼阵列中,使用易于和环保的合成方法。在此,我们利用废弃的聚酯织物作为成本效益的基材,用于原位无电沉积Ni,其表现出良好的柔韧性,重量轻,导电性。随后,通过基于热空气烘箱的方法在Ni织物上生长垂直对准的NCLDH NFA,通过简单的电化学沉积方法,在NC LDH NFA下进一步装饰蓬松的NCLDH NS分支。制备的核心外壳状纳米建筑改善了比表面积和电化学活性,为电解质扩散和电荷运输提供了理想的途径。当在1M KOH水溶液中测试电化学性能时,核 - 壳样NC LDH NFAs @ NSS / Ni织物电极在电流密度为2 mA /型/ Cm(2)和78.3%的优异速率能力为30mA / cm(2)(420.5μAh/ cm(2)),循环稳定性良好。此外,组装了一种基于织物的混合超级电容器(SC),其达到1.6V的稳定操作潜力窗口,在3mA / cm(2)中具有1147.23mF / cm(2)的大面积电容,以及高能量密度为0.392米/厘米/厘米(2),功率密度为2.353mW / cm(2)。采用如此高储能能力和灵活的性能,制造的混合动力SC操作可穿戴数字手表和电动机风扇,用于实时应用。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号