Yoo Chanbin, Seol Seung Kwon, Pyo Jaeyeon
Smart 3D Printing Research Team, Korea Electrotechnology Research Institute (KERI), Changwon 51543, Korea.
Electric Energy & Materials Engineering, KERI School, University of Science and Technology (UST), Changwon 51543, Korea.
ACS Nano. 2024 Aug 13;18(32):21544-21553. doi: 10.1021/acsnano.4c06987. Epub 2024 Jul 14.
The microcapillary, a glass tube with a nano/micrometer scale aperture, is used for manipulating small objects across diverse disciplines. A primary concern in using the microcapillary involves tip breakage upon contact. Here, we report a method for visualizing the microcapillary tip, enabling precise and instant determination of its contact with other objects. Illumination directed to the back aperture of the microcapillary induces waveguiding through the glass wall, enabling the visualization of the tip through scattering. We demonstrate that the tip scattering is sensitive to contact with an adjacent object owing to the near-field interaction of the waveguided light, providing a clear distinction between the contact and noncontact states. The key advantage of our method encompasses its minimal influence, irrespective of conductivity, and applicability to nanoscale systems. The versatility of our method is shown by the application to a wide range of tip diameters, various substrate and in-filling materials.
微毛细管是一种具有纳米/微米级孔径的玻璃管,用于跨学科操作小物体。使用微毛细管时的一个主要问题是接触时尖端破裂。在此,我们报告一种可视化微毛细管尖端的方法,能够精确且即时地确定其与其他物体的接触情况。指向微毛细管后孔径的照明会引发通过玻璃壁的波导,从而通过散射实现尖端的可视化。我们证明,由于波导光的近场相互作用,尖端散射对与相邻物体的接触很敏感,能在接触和非接触状态之间提供清晰区分。我们方法的关键优势包括其对导电性影响极小,以及适用于纳米级系统。我们的方法通过应用于各种尖端直径、不同的基底和填充材料展示了其通用性。