Morikawa Kyojiro, Takeuchi Tomoaki, Kitamori Takehiko
Department of Applied Chemistry, School of Engineering, The University of Tokyo, Tokyo, Japan.
Institute of Nanoengineering and Microsystems, Department of Power Mechanical Engineering, National Tsing Hua University, Hsinchu, Taiwan.
Electrophoresis. 2024 Dec;45(23-24):2076-2081. doi: 10.1002/elps.202300002. Epub 2024 Jul 4.
Miniaturized systems have attracted much attention with the recent advances in microfluidics and nanofluidics. From the capillary electrophoresis, the development of glass-based microfluidic and nanofluidic technologies has supported advances in microfluidics and nanofluidics. Most microfluidic systems, especially nanofluidic systems, are still simple, such as systems constructed with simple straight nanochannels and bulk-scale electrodes. One of the bottlenecks to the development of more complicated and sophisticated systems is to develop the locally integrated nano-electrodes. However, there are still issues with integrating nano-electrodes into nanofluidic devices because it is difficult to fit the nano-electrode size into a nanofluidic channel at the nanometer level. In this study, we propose a new method for the fabrication of local nano-electrodes in nanofluidic devices with nanofluidic and nano-electrochemistry-based experiments. An electroplating solution was introduced to a nanochannel with control of the flow and the electroplating reaction, by which nano-electrodes were successfully fabricated. In addition, a nanofluidic device was available for nanofluidic experiments with the application of 200 kPa. This method can be applied to any electroplating material such as gold and copper. The local nano-electrode will make a significant contribution to the development of more complicated and sophisticated nanofluidic electrophoresis systems and to local electric detection methods for various nanofluidic devices.
随着微流控和纳流控技术的最新进展,小型化系统已备受关注。从毛细管电泳开始,基于玻璃的微流控和纳流控技术的发展推动了微流控和纳流控技术的进步。大多数微流控系统,尤其是纳流控系统,仍然很简单,例如由简单的直纳米通道和宏观尺度电极构建的系统。开发更复杂精密系统的瓶颈之一是开发局部集成的纳米电极。然而,将纳米电极集成到纳流控设备中仍存在问题,因为很难在纳米尺度上将纳米电极尺寸适配到纳流控通道中。在本研究中,我们通过基于纳流控和纳米电化学的实验,提出了一种在纳流控设备中制造局部纳米电极的新方法。通过控制流动和电镀反应,将电镀液引入纳米通道,成功制造出了纳米电极。此外,该纳流控设备可在施加200 kPa压力的情况下用于纳流控实验。这种方法可应用于任何电镀材料,如金和铜。局部纳米电极将为更复杂精密的纳流控电泳系统的发展以及各种纳流控设备的局部电检测方法做出重大贡献。