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All-Soft Supercapacitors Based on Liquid Metal Electrodes with Integrated Functionalized Carbon Nanotubes

机译:基于液态金属电极的全软超级电容器,具有集成官能化碳纳米管

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摘要

Soft energy storage devices, such as supercapacitors, are an essential component for powering integrated soft microsystems. However, conventional supercapacitors are mainly manufactured using hard/brittle materials that easily crack and eventually delaminate from the current collector by mechanical deformation. Therefore, to realize all-soft supercapacitors, the electrodes should be soft, stretchable, and highly conductive without compromising the electrochemical performance. This paper presents all-soft supercapacitors for integrated soft microsystems based on gallium-indium liquid metal (eutectic gallium-indium alloy, EGaIn) electrodes with integrated functionalized carbon nanotubes (CNTs). Oxygen functional groups on the surface of the CNTs ensure strong adhesion between the functionalized CNTs and the thin native oxide layer on the surface of EGaIn, which enables delamination-free soft and stretchable electrodes even under mechanical deformation. The electrochemical performances of fabricated all-soft supercapacitors in a parallel-plate arrangement were investigated without and with applied mechanical deformation. The fabricated supercapacitors exhibit areal capacitances as high as 12.4 mF cm(-2) and show nearly unchanged performance under 30% applied strain. They maintain >95% of their original capacitance after >4200 charging and discharging cycles with a periodic applied strain of 30%. Finally, fabricated supercapacitors have been successfully integrated with a commercial light-emitting diode to demonstrate an integrated soft microsystem.
机译:软能量存储设备(如超级电容器)是用于为集成软微系统提供供电的重要组成部分。然而,传统的超级电容器主要是使用硬/脆性材料制造,通过机械变形,使用容易裂缝和最终从集电器分层。因此,为了实现全软超级电容器,电极应该是柔软的,可伸缩的,并且具有高导电性而不会影响电化学性能。本文介绍了基于镓 - 铟液态金属(共晶镓 - 铟合金,EGAIN)电极的集成软微系统,具有集成官能化碳纳米管(CNT)的全软超级电容器。 CNTS表面上的氧官能团确保官能化CNT和薄的天然氧化物层在Egain表面上的强粘附,即使在机械变形下也能够实现无分层的柔软电极。研究了平行板装置中制造的全软超级电容器的电化学性能,没有施加的机械变形。制造的超级电容器表现出高达12.4mF cm(-2)的面积电容,并在30%施加菌株下显示出几乎不变的性能。它们在> 4200充电和放电循环后保持> 95%的原始电容,周期性应用应变为30%。最后,已经成功地与商业发光二极管成功集成了制造的超级电容器以展示集成的软微系统。

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