Han Xiangguang, Wu Xiaoyu, Zhao Libo, Li Min, Jia Chen, Li Zhikang, Xie Jiaqi, Luo Guoxi, Yang Ping, Boukherroub Rabah, Türker Yurdanur, Özkaynak Mert Umut, Dönmez Koray Bahadır
State Key Laboratory for Manufacturing Systems Engineering, International Joint Laboratory for Micro/Nano Manufacturing and Measurement Technologies, Xi'an Jiaotong University (Yantai) Research Institute for Intelligent Sensing Technology and System, Xi'an Jiaotong University, Xi'an, 710049 China.
School of Instrument Science and Technology, Xi'an Jiaotong University, Xi'an, 710049 China.
Microsyst Nanoeng. 2024 Aug 2;10:107. doi: 10.1038/s41378-024-00742-0. eCollection 2024.
With the increasing development of intelligent robots and wearable electronics, the demand for high-performance flexible energy storage devices is drastically increasing. In this study, flexible symmetric microsupercapacitors (MSCs) that could operate in a wide working voltage window were developed by combining laser-direct-writing graphene (LG) electrodes with a phosphoric acid-nonionic surfactant liquid crystal (PA-NI LC) gel electrolyte. To increase the flexibility and enhance the conformal ability of the MSC devices to anisotropic surfaces, after the interdigitated LG formed on the polyimide (PI) film surface, the devices were further transferred onto a flexible, stretchable and transparent polydimethylsiloxane (PDMS) substrate; this substrate displayed favorable flexibility and mechanical characteristics in the bending test. Furthermore, the electrochemical performances of the symmetric MSCs with various electrode widths (300, 400, 500 and 600 μm) were evaluated. The findings revealed that symmetric MSC devices could operate in a large voltage range (0-1.5 V); additionally, the device with a 300 μm electrode width (MSC-300) exhibited the largest areal capacitance of 2.3 mF cm at 0.07 mA cm and an areal (volumetric) energy density of 0.72 μWh cm (0.36 mWh cm ) at 55.07 μW cm (27.54 mW cm), along with favorable mechanical and cycling stability. After charging for ~20 s, two MSC-300 devices connected in series could supply energy to a calculator to operate for ~130 s, showing its practical application potential as an energy storage device. Moreover, the device displayed favorable reversibility, stability and durability. After 12 months of aging in air at room temperature, its electrochemical performance was not altered, and after charging-discharging measurements for 5000 cycles at 0.07 mA cm, ~93.6% of the areal capacitance was still retained; these results demonstrated its practical long-term application potential as an energy storage device.
随着智能机器人和可穿戴电子产品的不断发展,对高性能柔性储能设备的需求急剧增加。在本研究中,通过将激光直写石墨烯(LG)电极与磷酸 - 非离子表面活性剂液晶(PA - NI LC)凝胶电解质相结合,开发出了可在宽工作电压窗口下运行的柔性对称微型超级电容器(MSC)。为了提高柔韧性并增强MSC器件对各向异性表面的贴合能力,在聚酰亚胺(PI)薄膜表面形成叉指状LG后,将器件进一步转移到柔性、可拉伸且透明的聚二甲基硅氧烷(PDMS)基板上;该基板在弯曲测试中表现出良好的柔韧性和机械特性。此外,还评估了具有不同电极宽度(300、400、500和600μm)的对称MSC的电化学性能。研究结果表明,对称MSC器件可在较大电压范围内(0 - 1.5V)运行;此外,电极宽度为300μm的器件(MSC - 300)在0.07mA/cm²时表现出最大面积电容为2.3mF/cm²,在55.07μW/cm²(27.54mW/cm³)时面积(体积)能量密度为0.72μWh/cm²(0.36mWh/cm³),同时具有良好的机械和循环稳定性。充电约20s后,两个串联的MSC - 300器件可为计算器供电约130s,显示出其作为储能设备的实际应用潜力。此外,该器件具有良好的可逆性、稳定性和耐久性。在室温空气中老化12个月后,其电化学性能未发生改变,在0.07mA/cm²下进行5000次充放电测量后,仍保留约93.6%的面积电容;这些结果证明了其作为储能设备的实际长期应用潜力。