Guo Heng, Yan Jianfeng, Jiang Lan, Deng Shengfa, Lin Xinzhu, Qu Liangti
State Key Laboratory of Tribology in Advanced Equipment, Department of Mechanical Engineering, Tsinghua University, Beijing 100084, People's Republic of China.
School of Mechanical Engineering, Beijing Institute of Technology, Beijing 100081, People's Republic of China.
ACS Appl Mater Interfaces. 2022 Aug 31;14(34):39220-39229. doi: 10.1021/acsami.2c10037. Epub 2022 Aug 22.
Supercapacitors are widely used in electronic systems as energy storage devices. The fabrication of a miniaturized supercapacitor with high specific capacitance has attracted much attention in recent years. Here, we propose a new method to fabricate supercapacitors with a nanoscale electrode gap by using a femtosecond laser. The original femtosecond laser was converted to a nondiffraction Bessel light field with nanoscale beam width and microscale focal depth. Nanoscale processing precision was achieved by regulating the Bessel beam. We fabricated graphene supercapacitors with different electrode gap widths (varying from the microscale to the nanoscale) using this method. Supercapacitors fabricated by this method have advantages in both size miniaturization (electrode gap width down to ∼500 nm) and electrochemical performance improvement (a specific volumetric capacitance of 195 F/cm). This work demonstrates that the femtosecond laser Bessel beam processing method provides a reliable pathway to fabricate miniaturized supercapacitors with high specific capacitance and other nanoscale electronic devices.
超级电容器作为能量存储设备在电子系统中被广泛应用。近年来,具有高比电容的小型化超级电容器的制造备受关注。在此,我们提出一种利用飞秒激光制造具有纳米级电极间隙的超级电容器的新方法。原始飞秒激光被转换为具有纳米级光束宽度和微米级焦深的无衍射贝塞尔光场。通过调节贝塞尔光束实现了纳米级加工精度。我们使用这种方法制造了具有不同电极间隙宽度(从微米级到纳米级变化)的石墨烯超级电容器。通过这种方法制造的超级电容器在尺寸小型化(电极间隙宽度低至约500纳米)和电化学性能提升(比体积电容为195 F/cm³)方面都具有优势。这项工作表明,飞秒激光贝塞尔光束加工方法为制造具有高比电容的小型化超级电容器及其他纳米级电子设备提供了一条可靠途径。