Navikas Vytautas, Leitão Samuel M, Marion Sanjin, Davis Sebastian James, Drake Barney, Fantner Georg E, Radenovic Aleksandra
Laboratory of Nanoscale Biology, Institute of Bioengineering, School of Engineering, EPFL, 1015 Lausanne, Switzerland.
Laboratory for Bio- and Nano-Instrumentation, EPFL, 1015 Lausanne, Switzerland.
ACS Appl Nano Mater. 2020 Aug 28;3(8):7829-7834. doi: 10.1021/acsanm.0c01345. Epub 2020 Jul 2.
Solid-state nanopores provide a highly sensitive tool for single-molecule sensing and probing nanofluidic effects in solutions. Glass nanopipettes are a cheap and robust type of solid-state nanopore produced from pulling glass capillaries with opening orifice diameters down to below tens of nanometers. Sub-50 nm nanocapillaries allow an unprecedented resolution for translocating single molecules or for scanning ion conductance microscopy imaging. Due to the small opening orifice diameters, such nanocapillaries are difficult to fill with solutions, compromising their advantages of low cost, availability, and experimental simplicity. We present a simple and cheap method to reliably fill nanocapillaries down to sub-10 nm diameters by microwave radiation heating. Using a large statistic of filled nanocapillaries, we determine the filling efficiency and physical principle of the filling process using sub-50 nm quartz nanocapillaries. Finally, we have used multiple nanocapillaries filled by our method for high-resolution scanning ion conductance microscopy imaging.
固态纳米孔为单分子传感和探测溶液中的纳米流体效应提供了一种高灵敏度工具。玻璃纳米吸管是一种廉价且坚固的固态纳米孔,它由拉制开口孔径低至数十纳米以下的玻璃毛细管制成。直径小于50纳米的纳米毛细管为转运单分子或扫描离子电导显微镜成像提供了前所未有的分辨率。由于开口孔径小,这种纳米毛细管难以填充溶液,削弱了它们低成本、易获取和实验简单的优势。我们提出了一种简单且廉价的方法,通过微波辐射加热可靠地填充直径低至10纳米以下的纳米毛细管。利用大量填充的纳米毛细管,我们使用直径小于50纳米的石英纳米毛细管确定了填充过程的填充效率和物理原理。最后,我们将通过我们的方法填充的多个纳米毛细管用于高分辨率扫描离子电导显微镜成像。