Kremen Anna, Wissberg Shai, Haham Noam, Persky Eylon, Frenkel Yiftach, Kalisky Beena
Department of Physics and Institute of Nanotechnology and Advanced Materials, Bar-Ilan University , Ramat-Gan 5290002, Israel.
Nano Lett. 2016 Mar 9;16(3):1626-30. doi: 10.1021/acs.nanolett.5b04444. Epub 2016 Feb 4.
Manipulating individual vortices in a deterministic way is challenging; ideally, manipulation should be effective, local, and tunable in strength and location. Here, we show that vortices respond to local mechanical stress applied in the vicinity of the vortex. We utilized this interaction to move individual vortices in thin superconducting films via local mechanical contact without magnetic field or current. We used a scanning superconducting quantum interference device to image vortices and to apply local vertical stress with the tip of our sensor. Vortices were attracted to the contact point, relocated, and were stable at their new location. We show that vortices move only after contact and that more effective manipulation is achieved with stronger force and longer contact time. Mechanical manipulation of vortices provides a local view of the interaction between strain and nanomagnetic objects as well as controllable, effective, and reproducible manipulation technique.
以确定性方式操纵单个涡旋具有挑战性;理想情况下,操纵应有效、局部且强度和位置可调。在这里,我们表明涡旋会对在涡旋附近施加的局部机械应力做出响应。我们利用这种相互作用,通过局部机械接触在没有磁场或电流的情况下移动薄超导薄膜中的单个涡旋。我们使用扫描超导量子干涉装置对涡旋进行成像,并利用传感器尖端施加局部垂直应力。涡旋被吸引到接触点,重新定位,并在新位置稳定下来。我们表明涡旋仅在接触后移动,并且用更强的力和更长的接触时间可实现更有效的操纵。涡旋的机械操纵提供了应变与纳米磁性物体之间相互作用的局部视图,以及可控、有效和可重复的操纵技术。