Yamashita Yu, Sakuma Shinya, Yamanishi Yoko
Department of Mechanical Engineering, Kyushu University, Fukuoka 819-0395, Japan.
Micromachines (Basel). 2022 Aug 13;13(8):1312. doi: 10.3390/mi13081312.
3D wiring technology is required for the integration of micro-nano devices on various 3D surfaces. However, current wiring technologies cannot be adapted to a variety of materials and surfaces. Here, we propose a new metal deposition method using only a micro-plasma bubble injector and a metal ion solution. Micro-plasma bubbles were generated on demand using pulses, and the localized reaction field enables metal deposition independent of the substrate. Three different modes of micro-plasma bubble generation were created depending on the power supply conditions and mode suitable for metal deposition. Furthermore, using a mode in which one bubble was generated for all pulses among the three modes, copper deposition on dry/wet materials, such as chicken tissue and glass substrates, was achieved. In addition, metal deposition of copper, nickel, chromium, cobalt, and zinc was achieved by simply changing the metal ion solution. Finally, patterning on glass and epoxy resin was performed. Notably, the proposed metal deposition method is conductivity independent. The proposed method is a starting point for 3D wiring of wet materials, which is difficult with existing technologies. Our complete system makes it possible to directly attach sensors and actuators to living organisms and robots, for example, and contribute to soft robotics and biomimetics.
在各种三维表面上集成微纳器件需要三维布线技术。然而,目前的布线技术无法适用于各种材料和表面。在此,我们提出一种仅使用微等离子体气泡注入器和金属离子溶液的新型金属沉积方法。利用脉冲按需产生微等离子体气泡,局部反应场使得金属沉积与基底无关。根据电源条件和适合金属沉积的模式,创建了三种不同的微等离子体气泡产生模式。此外,在三种模式中使用一种为所有脉冲产生一个气泡的模式,实现了在干/湿材料(如鸡肉组织和玻璃基板)上的铜沉积。此外,通过简单地改变金属离子溶液,实现了铜、镍、铬、钴和锌的金属沉积。最后,在玻璃和环氧树脂上进行了图案化。值得注意的是,所提出的金属沉积方法与导电性无关。所提出的方法是湿材料三维布线的起点,而现有技术在这方面存在困难。例如,我们的完整系统使得直接将传感器和致动器附着到生物体和机器人上成为可能,并有助于软机器人技术和仿生学。