Scanning SQUID Study of Vortex Manipulation by Local Contact
Local, deterministic manipulation of individual vortices in type 2 superconductors is challenging. The ability to control the position of individual vortices is necessary in order to study how vortices interact with each other, with the lattice, and with other magnetic objects. Here, we present a pr...
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Published in | Journal of visualized experiments no. 120 |
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Main Authors | , , , , |
Format | Journal Article |
Language | English |
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MyJove Corporation
01.02.2017
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Abstract | Local, deterministic manipulation of individual vortices in type 2 superconductors is challenging. The ability to control the position of individual vortices is necessary in order to study how vortices interact with each other, with the lattice, and with other magnetic objects. Here, we present a protocol for vortex manipulation in thin superconducting films by local contact, without applying current or magnetic field. Vortices are imaged using a scanning superconducting quantum interference device (SQUID), and vertical stress is applied to the sample by pushing the tip of a silicon chip into the sample, using a piezoelectric element. Vortices are moved by tapping the sample or sweeping it with the silicon tip. Our method allows for effective manipulation of individual vortices, without damaging the film or affecting its topography. We demonstrate how vortices were relocated to distances of up to 0.8 mm. The vortices remained stable at their new location up to five days. With this method, we can control vortices and move them to form complex configurations. This technique for vortex manipulation could also be implemented in applications such as vortex based logic devices. |
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AbstractList | Local, deterministic manipulation of individual vortices in type 2 superconductors is challenging. The ability to control the position of individual vortices is necessary in order to study how vortices interact with each other, with the lattice, and with other magnetic objects. Here, we present a protocol for vortex manipulation in thin superconducting films by local contact, without applying current or magnetic field. Vortices are imaged using a scanning superconducting quantum interference device (SQUID), and vertical stress is applied to the sample by pushing the tip of a silicon chip into the sample, using a piezoelectric element. Vortices are moved by tapping the sample or sweeping it with the silicon tip. Our method allows for effective manipulation of individual vortices, without damaging the film or affecting its topography. We demonstrate how vortices were relocated to distances of up to 0.8 mm. The vortices remained stable at their new location up to five days. With this method, we can control vortices and move them to form complex configurations. This technique for vortex manipulation could also be implemented in applications such as vortex based logic devices. |
Author | Wissberg, Shai Kalisky, Beena Shperber, Yishai Persky, Eylon Kremen, Anna |
AuthorAffiliation | 1 Department of Physics and Institute of Nanotechnology and Advanced Materials, Bar-Ilan University |
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BackLink | https://www.ncbi.nlm.nih.gov/pubmed/28190040$$D View this record in MEDLINE/PubMed |
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References | 26836018 - Nano Lett. 2016 Mar 9;16(3):1626-30 18513072 - Rev Sci Instrum. 2008 May;79(5):053704 25564043 - Sci Rep. 2015 Jan 07;5:7598 16572166 - Nature. 2006 Mar 30;440(7084):651-4 22769056 - Nano Lett. 2012 Aug 8;12(8):4055-9 15169308 - Phys Rev Lett. 2004 Apr 16;92(15):157002 |
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SubjectTerms | Computer Simulation Electric Conductivity Electromagnetic Fields Engineering Magnetic Phenomena Models, Chemical |
Title | Scanning SQUID Study of Vortex Manipulation by Local Contact |
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