首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Energy storage on demand: ultra-high-rate and high-energy-density inkjet-printed NiO micro-supercapacitors
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Energy storage on demand: ultra-high-rate and high-energy-density inkjet-printed NiO micro-supercapacitors

机译:按需储能:超高速率和高能密度喷墨印刷NIO微超级电容器

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摘要

Micro-supercapacitors are an important class of energy storage devices for portable, self-powered and miniaturized electronics such as sensors, biomedical implants and RFID tags. To address the issue of limited energy density of micro-supercapacitors, pseudocapacitive transition-metal oxides have been used as electrodes at the cost of lower power capability due to their low electronic conductivity. In this work, high-energy-density and high-power-density nickel(ii) oxide (NiO) micro-supercapacitors, fabricated through inkjet printing, are demonstrated. The nanoparticle-based thin film NiO electrodes showed up to 14 orders of magnitude higher electrical conductivity than single crystal NiO. The enhanced conductivity of the electrodes was reflected in the low relaxation time constant of just 30 ms, which is among the lowest achieved for any supercapacitor. A magnesium perchlorate-based aqueous electrolyte with extended operating voltage window was developed to enable the operation of the devices up to 1.5 V. The devices showed remarkable areal and volumetric specific capacitances of up to 155 mF cm(-2) and 705 F cm(-3) respectively, surpassing the state-of-the-art inkjet-printed supercapacitors but also a few of the best micro-supercapacitors known to date. This work provides a compelling platform to simplify the fabrication process of micro-supercapacitors, with focus on digital design, scalable manufacturing, and direct integration with printed electronics.
机译:微型超级电容器是用于便携式,自动和小型化电子产品的重要储能装置,例如传感器,生物医学植入物和RFID标签。为了解决微超级电容器的有限能量密度的问题,由于其低电子导电性,假壳体过渡金属氧化物已被用作较低功率能力成本的电极。在这项工作中,通过喷墨印刷制造的高能密度和高功率密度镍(II)氧化物(NIO)微型超级电容器。基于纳米粒子的薄膜NiO电极显示出比单晶NIO更高的电导率高达14个级幅度。电极的增强电导率反映在仅为30ms的低松弛时间常数中,这是任何超级电容器所达到的最低。开发了具有延长工作电压窗的高氯酸镁的水电解液,使装置的操作能够高达1.5V。该器件显示出显着的面积和容积特定电容,可达155mF cm(-2)和705 f cm( -3)分别超越最先进的喷墨印刷的超级电容器,但也是迄今为止最佳的最佳微型超级超级电容器。这项工作提供了一个引人注目的平台,简化了微型超级电容器的制造过程,重点是数字设计,可扩展的制造和与印刷电子设备的直接集成。

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