Yang Zhaorong, Lange Martin, Volodin Alexander, Szymczak Ritta, Moshchalkov Victor V
Nanoscale Superconductivity and Magnetism Group, Laboratory for Solid State Physics and Magnetism, K. U. Leuven, Celestijnenlaan 200D, B-3001 Leuven, Belgium.
Nat Mater. 2004 Nov;3(11):793-8. doi: 10.1038/nmat1222. Epub 2004 Oct 3.
Superconductivity and magnetism are two antagonistic cooperative phenomena, and the intriguing problem of their coexistence has been studied for several decades. Recently, artificial hybrid superconductor-ferromagnet systems have been commonly used as model systems to reveal the interplay between competing superconducting and magnetic order parameters, and to verify the existence of new physical phenomena, including the predicted domain-wall superconductivity (DWS). Here we report the experimental observation of DWS in superconductor-ferromagnet hybrids using a niobium film on a BaFe(12)O(19) single crystal. We found that the critical temperature T(c) of the superconductivity nucleation in niobium increases with increasing field until it reaches the saturation field of BaFe(12)O(19). In accordance with the field-shift of the maximum value of T(c), pronounced hysteresis effects have been found in resistive transitions. We argue that the compensation of the applied field by the stray fields of the magnetic domains as well as the change in the domain structure is responsible for the appearance of the DWS and the coexistence of superconductivity and magnetism in the superconductor-ferromagnet hybrids.
超导性和磁性是两种相互对抗的协同现象,它们共存这一引人入胜的问题已被研究了数十年。最近,人工混合超导 - 铁磁体系统已被普遍用作模型系统,以揭示相互竞争的超导和磁序参量之间的相互作用,并验证新物理现象的存在,包括预测的畴壁超导性(DWS)。在此,我们报告了使用生长在BaFe(12)O(19)单晶上的铌膜在超导 - 铁磁体混合体系中对DWS的实验观测。我们发现,铌中超导形核的临界温度T(c)随磁场增加而升高,直至达到BaFe(12)O(19)的饱和场。根据T(c)最大值的场移,在电阻转变中发现了明显的磁滞效应。我们认为,磁畴杂散场对外加磁场的补偿以及畴结构的变化是导致DWS出现以及超导 - 铁磁体混合体系中超导性与磁性共存的原因。