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三维介观超导环的涡旋结构

Vortex pattern in three-dimensional mesoscopic superconducting rings
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摘要 在Ginzburg-Landan理论的框架下,运用有限差分法研究了在圆环电流产生磁场下的介观超导圆环内的涡旋结构,讨论了超导圆环尺寸和不同空间分布的磁场对涡旋形成的影响,得到在一般超导圆环体内的基态多是巨涡旋态、而多涡旋态多以激发态形式存在的结论,说明磁场一般从超导圆环的环孔穿过,而很难穿过超导圆环体. Vortex structures in a mesoscopic a superconducting ring, which is in the magnetic field generated by a circular electric current, are investigated based on the phenomenological Ginzburg-Landau (G-L) theory. Due to the axial symmetry of the system, the three-dimensional problem is reduced to a two-dimensional problem. We can mesh a two- dimensional sample into grids, and discretize the first G-L equation by using the finite-difference method. Then the eigenvalues and eigenfunctions will be evaluated numerically by solving the discrete equations. With the eigenvalues and eigenfunctions we further obtain the minimum free energy of the system and the corresponding superconducting wave function. We discuss the influences of the ring size and magnetic field distribution on two kinds of the vortex structures: giant vortex state (GVS) and multivortex state (MVS). Calculations show: 1) the GVS with axial symmetric wave function exists only in a small size superconducting ring, as the GVS is a state of single vortex line that only goes through the hole at the center of the superconducting ring and carries several magnetic flux quanta with it; 2) with the increase of the ring size, the diamagnetism of superconducting ring becomes stronger, and the critical magnetic field value of a giant vortex state increases, and the maximal number of giant vortexes that the superconducting ring can accommodate is also growing; furthermore, the entrance of a flux line will cause fluctuations of critical field values; 3) when the superconducting ring size is large enough, a GVS splits into a number of MVS. The MVS is an excited state and the GVS is mostly a ground state; 4) the free energy of the system changes with the magnetic field distribution, the magnetic field provided by a central small current loop can pass through the superconducting ring easily, and produce multivortices whose formations are diverse; if the magnetic field runs parallel to the plane of the superconducting ring, it is difficult to pass through the superconducting ring and form multivortices; 5) the vortex lines are naturally bent with the magnetic field lines and can pass through the same horizontal plane twice, so that one of the two vortex states seems to be an antivortex state; generally, the magnetic field lines can go through the hole of a superconducting ring easily but can hardly penetrate through the body of a superconducting ring, the structure of multivortices is similar to that of the magnetic field distribution in a superconducting ring. We also obtain a vortex structure with coexistences of giant vortex and multivortices. This study is of significance for the application of superconducting nanomaterials.
出处 《物理学报》 SCIE EI CAS CSCD 北大核心 2016年第4期263-272,共10页 Acta Physica Sinica
基金 国家自然科学基金(批准号:11742063) 安徽省高校省级科学研究重点项目(批准号:KJ2012A203)资助的课题~~
关键词 涡旋结构 超导圆环 介观 Ginzburg-Landan理论 vortex pattern, superconducting rings, mesoscopic state, Ginzburg-Landau theory
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参考文献23

  • 1Meissner W, Ochsenfeld R 1933 Naturwissenschaften 21 787.
  • 2Abrikosov A A 1957 Sov. Phys. JETP 5 1174.
  • 3Yeoh W K, Gault B, Cui X Y, Zhu C, Moody M P, Li L, Zheng R K, Li W X, Wang X L, Dou S X, Sun G L, Lin C T, Ringer S P.2011.Phys. Rev. Lett. 106 247002.
  • 4Geim A K, Dubonos S V, Grigorieva I V, Novoselov K S, Peeters F M, Schweigert V A 2000 Nature 407 55.
  • 5Kanda A, Baelus B J, Peeters F M, Kadowaki K, Ootuka Y 2004 Phys. Rev. Lett. 93 257002.
  • 6Grigorieva I V, Escoffier W, Richardson J, Vinnikov L Y, Dubonos S, Oboznov V 2006 Phys. Rev. Lett. 96 077005.
  • 7Grigorieva I V, Escoffier W, Misko V R, Baelus B J, Peeters F M, Vinnikov L Y, Dubonos S V 2007 Phys. Rev. Lett. 99 147003.
  • 8Singha Deo P, Schweigert V A, Peeters F M, Geim A K 1997 Phys. Rev. Lett. 79 4653.
  • 9Baelus B J, Sun D, Peeters F M 2007 Phys. Rev. B 75 174523.
  • 10Gillis S, J?ykk? J, Milo?evi?M V.2014.Phys. Rev. B 89 024512.

二级参考文献14

  • 1Wang Q Y, Li Z, Zhang W H, Zhang Z C, Zhang J S, Li W, Ding H, Ou Y B, Deng P, Chang K, Wen J, Song C L, He K, Jia J F, Ji S H, Wang Y Y, Wang L L, Chen X, Ma X C, Xue Q K 2012 Chin. Phys. Lett. 29 037402.
  • 2He S L, He J F, Zhang W H, Zhao L, Liu D F, Liu X, Mou D X, Ou Y B, Wang Q Y, Li Z, Wang L L, Peng J P, Liu Y, Chen C Y, Yu L, Liu G D, Dong X L, Zhang J, Chen C T, Xu Z Y, Chen X, Ma X C, Xue Q K, Zhou X J 2013 Nat. Mater. 12 605.
  • 3Saint-James D, de Gennes P G 1963 Phys. Lett. 7 306.
  • 4Ginzburg V L 1964 Phys. Lett. 13 101.
  • 5Wang L L, Ma X C, Chen X, Xue Q K 2013 Chin. Phys. B 22 086801.
  • 6Unoki H, Sakudo T 1967 J. Phys. Soc. Jpn. 23 546.
  • 7Muller K A, Berlinger W, Waldner F 1968 Phys. Rev. Lett. 21 814.
  • 8Kawasaki M, Takahashi K, Maeda T, Tsuchiya R, Shinohara M, Ishiyama O, Yonezawa T, Yoshimoto M, Koinuma H 1994 Science 266 1540.
  • 9Koster G, Kropman B L, Rijnders G J H M, Blank D H A, Rogalla H 1998 Appl. Phys. Lett. 73 2920.
  • 10Biswas A, Rossen P B, Yang C H, Yang C H, Siemons W, Jung M H, Yang I K, Ramesh R, Jeong Y H 2011 Appl. Phys. Lett. 98 051904.

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