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首页> 外文期刊>Journal of power sources >Yarn-form electrodes with high capacitance and cycling stability based on hierarchical nanostructured nickel-cobalt mixed oxides for weavable fiber- shaped supercapacitors
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Yarn-form electrodes with high capacitance and cycling stability based on hierarchical nanostructured nickel-cobalt mixed oxides for weavable fiber- shaped supercapacitors

机译:基于层状纳米结构镍钴混合氧化物的可编织纤维状超级电容器具有高电容和循环稳定性的纱线状电极

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Integration of microelectronic devices into traditional clothing for smart wearable electronic textiles attracts increasing attentions in recent years, which will boost the economy in the next few decades. The flexible and weavable micropower units are the key component for smart wearable electronic textiles. Herein, the soft and conductive stainless steel yarn is chosen to serve as both substrate and collector, satisfying the requirements of high flexibility and good electrical conductivity. As expected, the as-obtained yarn-form electrodes based on nickel-cobalt oxide with ultrathin two-dimensional nanosheet hierarchical arrays and grown binder-freely on the conductive stainless steel yarn substrate exhibit a higher specific capacitance (90.82 mF cm−1or 289.24 mF cm-2 at the current of 0.33 mA cm−1) and a better cyclic stability (92.4% retention of specific capacitance after 3000 cycles at the current of 1.67 mA cm−1), compared to those based on nickel-cobalt oxide with nanowires in this work. Through the further assembly of the as-prepared yarn-form electrodes into the parallel arrangement, the symmetric all-solid-state fiber-shaped supercapacitor with a high energy density (3.9 μWh·cm−1or 12.42 μWh·cm−2) and good flexibility and weaveability is fabricated, which has great potential to serve as weavable power unit for smart wearable electronic devices.
机译:将微电子设备集成到用于智能可穿戴电子纺织品的传统服装中,近年来引起了越来越多的关注,这将促进未来几十年的经济发展。灵活可编织的微功率单元是智能可穿戴电子纺织品的关键组件。在此,选择柔软且导电的不锈钢丝作为基材和集电器,以满足高柔韧性和良好导电性的要求。正如预期的那样,所获得的基于镍钴氧化物的纱线状电极具有超薄的二维纳米片层次阵列,并且在导电的不锈钢纱线基底上自由生长而无粘结剂,表现出更高的比电容(90.82 mF cm-1或289.24 mF与基于镍钴氧化物纳米线的电极相比,在电流为0.33µmA·cm-1时的cm-2电流下,具有更好的循环稳定性(在1.67µmA·cm-1的电流下经过3000次循环后,比电容保持92.4%)在这项工作中。通过将准备好的纱状电极进一步组装成平行排列,可以得到能量密度高(3.9μWh·cm-1或12.42 Wh·cm-2)的对称全固态纤维状超级电容器。制造出的柔性和可编织性具有很大的潜力,可以用作智能可穿戴电子设备的可编织电源单元。

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