| Literature DB >> 27798622 |
Qing Lin He1, Xufeng Kou1, Alexander J Grutter2, Gen Yin1, Lei Pan1, Xiaoyu Che1, Yuxiang Liu1, Tianxiao Nie1, Bin Zhang3, Steven M Disseler2, Brian J Kirby2, William Ratcliff Ii2, Qiming Shao1, Koichi Murata1, Xiaodan Zhu1, Guoqiang Yu1, Yabin Fan1, Mohammad Montazeri1, Xiaodong Han3, Julie A Borchers2, Kang L Wang1.
Abstract
Magnetic topological insulators such as Cr-doped (Bi,Sb)2Te3 provide a platform for the realization of versatile time-reversal symmetry-breaking physics. By constructing heterostructures exhibiting Néel order in an antiferromagnetic CrSb and ferromagnetic order in Cr-doped (Bi,Sb)2Te3, we realize emergent interfacial magnetic phenomena which can be tailored through artificial structural engineering. Through deliberate geometrical design of heterostructures and superlattices, we demonstrate the use of antiferromagnetic exchange coupling in manipulating the magnetic properties of magnetic topological insulators. Proximity effects are shown to induce an interfacial spin texture modulation and establish an effective long-range exchange coupling mediated by antiferromagnetism, which significantly enhances the magnetic ordering temperature in the superlattice. This work provides a new framework on integrating topological insulators with antiferromagnetic materials and unveils new avenues towards dissipationless topological antiferromagnetic spintronics.Entities:
Year: 2016 PMID: 27798622 DOI: 10.1038/nmat4783
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841