First observation of Spin-Momentum Helical Locking in Bi2Se3 and Bi2Te3, demonstration of Topological-Order at 300K and a realization of topological-transport-regime
D. Hsieh, Y. Xia, D. Qian, L. Wray, J. H. Dil, F. Meier,, J.Osterwalder, L. Patthey, J. G. Checkelsky, N. P. Ong, A. V. Fedorov, H., Lin, A. Bansil, D. Grauer, Y. S. Hor, R. J. Cava, and M. Z. Hasan

TL;DR
This study reports the first observation of spin-momentum locking and topological order at room temperature in Bi2Se3 and Bi2Te3, demonstrating potential for spintronic applications with protected spin-polarized states.
Contribution
It provides experimental evidence of spin-momentum locking and topological order at 300K in Bi2Se3 and Bi2Te3, and demonstrates a topological-transport-regime for Dirac fermions.
Findings
Nearly 100% spin polarization of Dirac states
Room temperature topological order observed
Realization of topological-transport-regime
Abstract
Both the theoretical and experimental discovery of single-Dirac-cone topological-insulator-class was reported at arXiv:0812.2078 (2008) [Y. Xia et.al., Nature Physics 5, 398-402 (2009) http://www.nature.com/nphys/journal/v5/n6/full/nphys1294.html]. Here we report the first observation of Spin-Momentum Helical Locking and Spin-Vortex structures in Bi2Se3 and Bi2Te3, demonstrate the existence of Topological-Order at 300K and report a material realization of topological-transport-regime for helical Dirac fermions. Our results reveal a one-to-one spin-momentum locked Dirac structure in Bi2Se3 and Bi2Te3 that is nearly 100% spin-polarized, which exhibits a tunable topological fermion density in the vicinity of the Kramers' point and can be driven to the long-sought topological-transport-regime. The observed topological nodal Dirac ground state is found to be protected even up to room…
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