凝聚态物理
超导电性
范德瓦尔斯力
物理
磁性
鱿鱼
物质状态
铁磁性
电子
莫特绝缘子
自旋(空气动力学)
涡流
作者
Persky, Eylon,Bjørlig, Anders V.,Feldman, Irena,Almoalem, Avior,Altman, Ehud,Berg, Erez,Kimchi, Itamar,Ruhman, Jonathan,Kanigel, Amit,Kalisky, Beena
摘要
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 4Hb-TaS2, which realizes an alternate stack 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 above Tc, indicating the presence of a magnetic phase independent of the superconductor. Strikingly, this phase does not generate detectable magnetic signals. We use scanning superconducting quantum interference device (SQUID) microscopy to show that it is incompatible with ferromagnetic ordering. The discovery of this new form of hidden magnetism illustrates how combining superconductivity with a strongly correlated system can lead to new, unexpected physics.
科研通智能强力驱动
Strongly Powered by AbleSci AI