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Micro-Supercapacitors Based on Interdigital Electrodes of Reduced Graphene Oxide and Carbon Nanotube Composites with Ultrahigh Power Handling Performance

机译:基于指间电极的氧化石墨烯和碳纳米管复合材料的超大型电容器,具有超高功率处理性能

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摘要

A novel method for fabricating micro-patterned interdigitated electrodes based on reduced graphene oxide (rGO) and carbon nanotube (CNT) composites for ultra-high power handling micro-supercapacitor application is reported. The binder-free microelectrodes were developed by combining electrostatic spray deposition (ESD) and photolithography lift-off methods. Without typically used thermal or chemical reduction, GO sheets are readily reduced to rGO during the ESD deposition. Electrochemical measurements show that the in-plane interdigital design of the microelectrodes is effective in increasing accessibility of electrolyte ions in-between stacked rGO sheets through an electro-activation process. Addition of CNTs results in reduced restacking of rGO sheets and improved energy and power density. Cyclic voltammetry (CV) measurements show that the specific capacitance of the micro-supercapacitor based on rGO-CNT composites is 6.1 mF cm~(-2) at 0.01 V s~(-1) At a very high scan rate of SO V s~(-1) a specific capacitance of 2.8 mF cm~(-2) (stack capacitance of 3.1 F cm~(-3)) is recorded, which is an unprecedented performance for supercapacitors. The addition of CNT, electrolyte-accessible and binder-free microelectrodes, as well as an interdigitated in-plane design result in a high-frequency response of the micro-supercapacitors with resistive-capacitive time constants as low as 4.8 ms. These characteristics suggest that interdigitated rCO-CNT composite electrodes are promising for on-chip energy storage application with high power demands.
机译:报道了一种基于还原型氧化石墨烯(rGO)和碳纳米管(CNT)复合材料的微图案指状电极的新型制备方法,该方法可用于超高功率处理微型超级电容器。通过结合静电喷涂(ESD)和光刻剥离技术开发了无粘合剂微电极。如果不使用通常的热还原或化学还原方法,则在ESD沉积过程中,GO片材很容易还原为rGO。电化学测量表明,微电极的面内叉指设计有效地提高了通过电激活过程在堆叠的rGO片之间的电解质离子的可及性。碳纳米管的添加可减少rGO薄板的重新堆叠并提高能量和功率密度。循环伏安法(CV)测量表明,基于rGO-CNT复合材料的微型超级电容器在0.01 V s〜(-1)的超高扫描速度下的比电容为6.1 mF cm〜(-2)记录到(-1)的比电容为2.8 mF cm〜(-2)(堆叠电容为3.1 F cm〜(-3)),这对于超级电容器来说是前所未有的性能。碳纳米管,电解质可访问且无粘合剂的微电极的添加以及交叉指状的平面设计可导致微型超级电容器的高频响应,其电阻电容时间常数低至4.8毫秒。这些特性表明,叉指式rCO-CNT复合电极有望用于具有高功率需求的片上能量存储应用。

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  • 来源
    《Advanced Functional Materials》 |2012年第21期|4501-4510|共10页
  • 作者

    Majid Beidaghi; Chunlei Wang;

  • 作者单位

    Department of Mechanical and Materials Engineering Florida International University 10555 W. Flagler St., EC 3463, FL 33174, USA;

    Department of Mechanical and Materials Engineering Florida International University 10555 W. Flagler St., EC 3463, FL 33174, USA;

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