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柔性碳织物上的氧化钴纳米线作为全固态对称超级电容器的无粘结剂电极

CoO Nanowires on Flexible Carbon Fabric as a Binder-Free Electrode for All Solid-State Symmetric Supercapacitor.

作者信息

Howli Promita, Das Swati, Sarkar Samrat, Samanta Madhupriya, Panigrahi Karamjyoti, Das Nirmalya Sankar, Chattopadhyay Kalyan Kumar

机构信息

Department of Physics and School of Materials Science and Nanotechnology, Jadavpur University, Kolkata 700032, India.

出版信息

ACS Omega. 2017 Aug 3;2(8):4216-4226. doi: 10.1021/acsomega.7b00702. eCollection 2017 Aug 31.

Abstract

Developing portable, lightweight, and flexible energy storage systems has become a necessity with the advent of wearable electronic devices in our modern society. This work focuses on the fabrication of CoO nanowires on a flexible carbon fabric (CoNW/CF) substrate by a simple cost-effective hydrothermal route. The merits of the high surface area of the prepared CoO nanostructures result in an exceptionally high specific capacitance of 3290 F/g at a scan rate of 5 mV/s, which is close to their theoretical specific capacitance. Furthermore, a solid-state symmetric supercapacitor (SSC) based on CoNW/CF (CoNW/CF//CoNW/CF) was fabricated successfully. The device attains high energy and power densities of 6.7 Wh/kg and 5000 W/kg. It also demonstrates excellent rate capability and retains 95.3% of its initial capacitance after 5000 cycles. Further, the SSC holds its excellent performance at severe bending conditions. When a series assembly of four such devices is charged, it can store sufficient energy to power a series combination of five light-emitting diodes. Thus, this SSC device based on a three-dimensional coaxial architecture opens up new strategies for the design of next-generation flexible supercapacitors.

摘要

随着可穿戴电子设备在现代社会的出现,开发便携式、轻便且灵活的储能系统已成为必然。这项工作聚焦于通过一种简单且经济高效的水热法在柔性碳织物(CoNW/CF)基底上制备CoO纳米线。所制备的CoO纳米结构具有高表面积的优点,在5 mV/s的扫描速率下产生了高达3290 F/g的比电容,这接近其理论比电容。此外,成功制备了基于CoNW/CF的固态对称超级电容器(SSC)(CoNW/CF//CoNW/CF)。该器件实现了6.7 Wh/kg和5000 W/kg的高能量和功率密度。它还展现出优异的倍率性能,在5000次循环后保留了其初始电容的95.3%。此外,该SSC在严苛的弯曲条件下仍保持其优异性能。当四个这样的器件串联组装充电时,它能够存储足够的能量来为五个发光二极管的串联组合供电。因此,这种基于三维同轴结构的SSC器件为下一代柔性超级电容器的设计开辟了新策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/12df/6659009/6ae2881a7d06/ao-2017-00702p_0005.jpg

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