Department of Physics, Bar Ilan University, Ramat Gan, Israel.
Bar Ilan Institute of Nanotechnology and Advanced Materials, Bar Ilan University, Ramat Gan, Israel.
Nature. 2022 Jul;607(7920):692-696. doi: 10.1038/s41586-022-04855-2. Epub 2022 Jul 27.
Doped Mott insulators exhibit some of the most intriguing quantum phases of matter, including quantum spin liquids, unconventional superconductors and non-Fermi liquid metals. Such phases often arise when itinerant electrons are close to a Mott insulating state, and thus experience strong spatial correlations. Proximity between different layers of van der Waals heterostructures naturally realizes a platform for experimentally studying the relationship between localized, correlated electrons and itinerant electrons. Here we explore this relationship by studying the magnetic landscape of tantalum disulfide 4Hb-TaS, which realizes an alternating stacking of a candidate spin liquid and a superconductor. We report on a spontaneous vortex phase whose vortex density can be trained in the normal state. We show that time-reversal symmetry is broken in the normal state, indicating the presence of a magnetic phase independent of the superconductor. Notably, this phase does not generate ferromagnetic signals that are detectable using conventional techniques. We use scanning superconducting quantum interference device microscopy to show that it is incompatible with ferromagnetic ordering. The discovery of this unusual magnetic phase illustrates how combining superconductivity with a strongly correlated system can lead to unexpected physics.
掺杂莫特绝缘体表现出一些最有趣的物质量子相,包括量子自旋液体、非常规超导体和非费米液体金属。这些相通常出现在巡游电子接近莫特绝缘态并因此经历强烈空间相关时。范德华异质结构的不同层之间的接近自然实现了一个实验研究局域相关电子和巡游电子之间关系的平台。在这里,我们通过研究二硫化钽 4Hb-TaS 的磁景观来探索这种关系,它实现了候选自旋液体和超导体的交替堆叠。我们报告了一种自发涡旋相,其涡旋密度可以在正常状态下训练。我们表明,在正常状态下时间反演对称性被破坏,表明存在与超导体无关的磁相。值得注意的是,该相不会产生可使用常规技术检测到的铁磁信号。我们使用扫描超导量子干涉装置显微镜表明,它与铁磁有序不兼容。这种不寻常的磁相的发现说明了如何将超导性与强关联系统结合起来可以导致意想不到的物理现象。