论文标题
超导体/铁磁纳米复合材料中的自发涡流状态
Spontaneous vortex state in a superconductor/ferromagnet nanocomposite
论文作者
论文摘要
超导性和磁性之间的相互作用的机制是物理学中令人着迷且具有挑战性的问题之一。理论预测,铁磁顺序可以以自发涡流相的形式与超导顺序共存,在没有外部磁场的情况下,磁性涡流对成分。但是,没有通过大量磁性测量对自发涡流进行严格的证明。在这里,我们展示了使用超导体/亚铁磁性分形纳米复合材料对自发涡流进行实验性观察结果,其中将MGB2和铁磁纳米流膜分散在正常的Matrix中,以实现远程电子互动,并诱导远程电子磁相互作用,并诱导远程差异。我们从大量磁化测量值中发现,具有非零remanent磁化的样品表现出磁性行为,这些行为与自发涡流方案完全一致,从理论上讲是超导材料中磁性夹杂物的预测。由此产生的自发涡流状态处于平衡状态,并与Meissner状态(完全屏蔽外部磁场)并存。目前的观察结果不仅揭示了超导体/铁磁性杂种中自发涡流的演化过程,而且还阐明了分形障碍和结构异质性对涡旋成核对约瑟夫森超级传导液的影响下的作用。
The mechanism of the interplay between superconductivity and magnetism is one of the intriguing and challenging problems in physics. Theory has predicted that the ferromagnetic order can coexist with the superconducting order in the form of a spontaneous vortex phase in which magnetic vortices nucleate in the absence of an external field. However, there has been no rigorous demonstration of spontaneous vortices by bulk magnetic measurements. Here we show the results of experimental observations of spontaneous vortices using a superconductor/ferromagnet fractal nanocomposite, in which superconducting MgB2 and ferromagnetic nanograins are dispersedly embedded in the normal matrix to realize the remote electromagnetic interaction and also to induce a long-range Josephson coupling. We found from bulk magnetization measurements that the sample with nonzero remanent magnetization exhibits the magnetic behaviors which are fully consistent with a spontaneous vortex scenario predicted theoretically for magnetic inclusions in a superconducting material. The resulting spontaneous vortex state is in equilibrium and coexists surprisingly with a Meissner state (complete shielding of an external magnetic field). The present observation not only reveals the evolution process of the spontaneous vortices in superconductor/ferromagnet hybrids, but it also sheds light on the role of the fractal disorder and structural heterogeneity on the vortex nucleation under the influence of Josephson superconducting currents.