Time-reversal invariant resonant backscattering on a topological insulator surface driven by a time-periodic gate voltage

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作者
Ming-Xun Deng
R. Ma
Wei Luo
R. Shen
L. Sheng
D. Y. Xing
机构
[1] Nanjing University,National Laboratory of Solid State Microstructures and Department of Physics
[2] South China Normal University,Laboratory of Quantum Engineering and Quantum Materials, ICMP and SPTE
[3] Nanjing University of Information Science and Technology,Jiangsu Key Laboratory for Optoelectronic Detection of Atmosphere and Ocean
[4] Jiangxi University of Science and Technology,School of Science
[5] Nanjing University,Collaborative Innovation Center of Advanced Microstructures
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We study the scattering of the Dirac electrons by a point-like nonmagnetic impurity on the surface of a topological insulator, driven by a time-periodic gate voltage. It is found that, due to the doublet degenerate crossing points of different Floquet sidebands, resonant backscattering can happen for the surface electrons, even without breaking the time-reversal (TR) symmetry of the topological surface states (TSSs). The energy spectrum is reshuffled in a way quite different from that for the circularly polarized light, so that new features are exhibited in the Friedel oscillations of the local charge and spin density of states. Although the electron scattering is dramatically modified by the driving voltage, the 1/ρ scale law of the spin precession persists for the TSSs. The TR invariant backscattering provides a possible way to engineer the Dirac electronic spectrum of the TSSs, without destroying the unique property of spin-momentum interlocking of the TSSs.
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