4.8 Article

Parallel magnetic field suppresses dissipation in superconducting nanostrips

出版社

NATL ACAD SCIENCES
DOI: 10.1073/pnas.1619550114

关键词

parallel magnetic field; reentrant superconductivity; vortex; nanostrips

资金

  1. US Department of Energy (DOE), Office of Science, Office of Basic Energy Sciences, Materials Sciences and Engineering Division
  2. Scientific Discovery through Advanced Computing program - US DOE, Office of Science, Advanced Scientific Computing Research and Basic Energy Science, Division of Materials Science and Engineering
  3. National Science Foundation [DMR-1407175]
  4. DOE, Office of Science, Office of Basic Energy Sciences [DE-AC02-06CH11357]
  5. Division Of Materials Research
  6. Direct For Mathematical & Physical Scien [1407175] Funding Source: National Science Foundation

向作者/读者索取更多资源

The motion of Abrikosov vortices in type-II superconductors results in a finite resistance in the presence of an applied electric current. Elimination or reduction of the resistance via immobilization of vortices is the holy grail of superconductivity research. Common wisdom dictates that an increase in the magnetic field escalates the loss of energy since the number of vortices increases. Here we show that this is no longer true if the magnetic field and the current are applied parallel to each other. Our experimental studies on the resistive behavior of a superconducting Mo0.79Ge0.21 nanostrip reveal the emergence of a dissipative state with increasing magnetic field, followed by a pronounced resistance drop, signifying a reentrance to the superconducting state. Large-scale simulations of the 3D time-dependent Ginzburg-Landau model indicate that the intermediate resistive state is due to an unwinding of twisted vortices. When the magnetic field increases, this instability is suppressed due to a better accommodation of the vortex lattice to the pinning configuration. Our findings show that magnetic field and geometrical confinement can suppress the dissipation induced by vortex motion and thus radically improve the performance of superconducting materials.

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