paper

Ferromagnetic phase transition in topological crystalline insulator thin films: interplay of anomalous Hall angle and magnetic anisotropy

arXiv:1907.05716 · doi:10.1103/PhysRevB.100.134422

Abstract

In magnetic topological phases of matter, the quantum anomalous Hall (QAH) effect is an emergent phenomenon driven by ferromagnetic doping, magnetic proximity effects and strain engineering. The realization of QAH states with multiple dissipationless edge and surface conduction channels defined by a Chern number was foreseen for the ferromagnetically ordered SnTe class of topological crystalline insulators (TCIs). From magnetotransport measurements on SnMnTe ()(111) epitaxial thin films grown by molecular beam epitaxy on BaF substrates, hole mediated ferromagnetism is observed in samples with and the highest is inferred from an anomalous Hall behavior in SnMnTe. The sizable anomalous Hall angle 0.3 obtained for SnMnTe is one of the greatest reported for magnetic topological materials. The ferromagnetic ordering with perpendicular magnetic anisotropy, complemented by the inception of anomalous Hall effect in the SnMnTe layers for a thickness commensurate with the decay length of the top and bottom surface states, points at SnMnTe as a preferential platform for the realization of QAH states in ferromagnetic TCIs.

14 Pages, 7 Figures