磁性
拓扑绝缘体
凝聚态物理
绝缘体(电)
物理
拓扑(电路)
光电子学
工程类
电气工程
作者
Ryutaro Okuma,Kohei Yamagami,Y. Fujisawa,C. H. Hsu,Yuki Obata,N. Tomoda,Margarita G. Dronova,Kazuyuki Kuroda,Hironobu Ishikawa,Kaishu Kawaguchi,Kohei Aido,K. Kindo,Yang‐Hao Chan,H. Lin,Yoshihiko Ihara,Takeshi Kondo,Y. Okada
标识
DOI:10.48550/arxiv.2405.16781
摘要
Analogous to the charged electron-electron pair condensation in superconductors, an excitonic insulator (EI) represents Fermi surface instability due to spontaneous formation and condensation of charge-neutral electron-hole pair (exciton). Unlike in superconductors, however, the charge-neutral nature of exciton makes probing emergent EI phase via macroscopic physical properties generally difficult. Here, we propose a van der Waals coupled antiferromagnetic semiconductor GdGaI (GGI) as a new material category leading to emergent multi-q magnet intertwined with spontaneous exciton formation/condensation. Before excitonic band hybridization, a simple picture for the parent electronic state consists of electron (Gd-derived 5d) and hole (Ga-derived 4p) delocalized bands, together with Gd-derived 4f localized antiferromagnets with S = 7/2 classical nature. Through intra Gd atom 4f-5d Hund's coupling, a notable finding is the emergent minimum length scale (2a) Skyrmion-like spin texture resulting from spontaneous condensation/formation of spin-polarized exciton with BCS-BEC crossover phenomenology. This discovered platform is promising for realizing valuable quantum matter on the nanoscale; our finding will provide significant insight into designing the atomic scale topological magnetism out of itinerant systems.
科研通智能强力驱动
Strongly Powered by AbleSci AI