Max Planck Institute for the Science of Light and Friedrich-Alexander University, 91058 Erlangen, Germany.
Nat Commun. 2014 Mar 10;5:3380. doi: 10.1038/ncomms4380.
Although trapping and manipulation of small objects have been of interest for a range of applications and many clever techniques have been devised, new methods are still in great demand for handling different materials and geometries. Here, we report on an electrostatic trap that is created in an aqueous medium between the aperture of a nanopipette and a glass substrate without the need for external potentials. After a thorough characterization of the trapping conditions, we show that we can displace or release a particle at will. Furthermore, we demonstrate trapping and manipulation of nanoparticles and lipid vesicles attached to lipid bilayers, paving the way for controlled studies of forces and diffusion associated with biological membranes. We expect the technique to find interesting applications also in other areas such as optonanofluidics and plasmonics.
虽然对小物体的捕获和操作已经引起了一系列应用的关注,并且已经设计出了许多巧妙的技术,但对于处理不同材料和几何形状的新方法仍有很大的需求。在这里,我们报告了一种静电陷阱,它是在纳米管的孔径和玻璃基底之间的水溶液中形成的,而不需要外部电势。在对捕获条件进行了彻底的表征之后,我们证明我们可以随意移动或释放粒子。此外,我们还展示了对附着在脂质双层上的纳米粒子和脂质囊泡的捕获和操作,为与生物膜相关的力和扩散的控制研究铺平了道路。我们预计该技术也将在其他领域有有趣的应用,如光纳流和等离子体学。