Kim Min-Gu, Lee Byeongyong, Li Mochen, Noda Suguru, Kim Choongsoon, Kim Jayoung, Song Woo-Jin, Lee Seung Woo, Brand Oliver
School of Electrical and Computer Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, United States.
Institute for Electronics and Nanotechnology, Georgia Institute of Technology, Atlanta, Georgia 30332, United States.
ACS Nano. 2020 May 26;14(5):5659-5667. doi: 10.1021/acsnano.0c00129. Epub 2020 May 12.
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 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.
软储能设备,如超级电容器,是为集成软微系统供电的关键组件。然而,传统超级电容器主要使用硬/脆材料制造,这些材料容易开裂,并最终因机械变形而从集流体上分层。因此,为了实现全软超级电容器,电极应柔软、可拉伸且具有高导电性,同时不影响其电化学性能。本文介绍了一种用于集成软微系统的全软超级电容器,该超级电容器基于镓铟液态金属(共晶镓铟合金,EGaIn)电极,并集成了功能化碳纳米管(CNT)。碳纳米管表面的氧官能团确保了功能化碳纳米管与EGaIn表面薄的原生氧化层之间的强附着力,这使得即使在机械变形下也能实现无分层的柔软且可拉伸的电极。研究了所制备的平行板结构全软超级电容器在无机械变形和有机械变形情况下的电化学性能。所制备的超级电容器表现出高达12.4 mF/cm²的面积电容,并且在30%的外加应变下性能几乎不变。在30%的周期性外加应变下经过>4200次充放电循环后,它们仍保持其原始电容的>95%。最后,所制备的超级电容器已成功与商用发光二极管集成,以展示一个集成软微系统。