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Micromanipulation of colloidal structures at interfaces using magnetic tweezers

机译:使用磁性镊子对界面处的胶体结构进行显微操作

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Magnetic tweezers have evolved into an indispensable tool in soft condensed matter and biological physics. They are used to study local forces in biological tissue, to stretch and manipulate DNA, to transport ferrofluids, and to probe protein networks in the cell environment. Magnetic tweezers are stronger and cover a wider range of forces (femto- to nano-Newtons) than optical tweezers (pico-Newtons). However, optical tweezers have proven more versatile than conventional magnetic-tweezers in performing complex local manipulations on the micron scale. Here we use nanomagnets formed by movable domain walls in magnetic films to combine the advantages of conventional, magnetic and optical tweezers. Recently nanomagnetic elements were proposed for micro-manipulation of vortices in superconductors. It was shown that a movable magnetic domain wall can be used to generate, trap, and move vortices due to the wall's highly inhomogeneous magnetic stray field. Our research builds on recent accomplishments including the application of nanomagnets for the controlled manipulation of paramagnetic colloids, and the measurement of the forces that arrange the colloids in different low-dimensional states of aggregate.
机译:磁性镊子已经发展成为软凝聚物和生物物理学中必不可少的工具。它们用于研究生物组织中的局部力,拉伸和操纵DNA,转运铁磁流体以及探测细胞环境中的蛋白质网络。磁性镊子比光学镊子(皮牛顿)更强,覆盖的力范围更广(从毫微微牛顿到纳米牛顿)。然而,事实证明,在进行微米级的复杂局部操作时,光镊比常规磁镊具有更多的通用性。在这里,我们使用由磁性薄膜中的可移动畴壁形成的纳米磁铁来结合传统镊子,磁性镊子和光学镊子的优点。最近,提出了用于超导体中旋涡的微操纵的纳米磁性元件。结果表明,由于壁的高度非均匀磁杂散场,可移动的磁畴壁可用于生成,捕获和移动旋涡。我们的研究基于最近的成就,包括将纳米磁铁应用于顺磁性胶体的受控操纵,以及测量将胶体排列在不同的低维聚集体中的力。

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