4.6 Article

Terahertz signatures of ultrafast Dirac fermion relaxation at the surface of topological insulators

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NPJ QUANTUM MATERIALS
卷 6, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41535-021-00384-9

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资金

  1. RFBR [18-29-20101, 19-02-00598]
  2. European Union [737038, 804349]
  3. Wurzburg-Dresden Cluster of Excellence on Complexity and Topology in Quantum Matter (ct.qmat)
  4. MAINZ Visiting Professorship
  5. Spanish MINECO [SEV-2017-0706]
  6. European Research Council (ERC) [804349] Funding Source: European Research Council (ERC)

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In this study, the ultrafast carrier dynamics of topologically protected surface states in topological insulators were investigated using a combination of photoexcitation and below-bandgap terahertz photons. The results showed faster relaxation of charge carriers in the topologically protected Dirac surface states compared to bulk carriers. This discovery opens up promising avenues for high-bandwidth optoelectronic and spintronic applications.
Topologically protected surface states present rich physics and promising spintronic, optoelectronic, and photonic applications that require a proper understanding of their ultrafast carrier dynamics. Here, we investigate these dynamics in topological insulators (TIs) of the bismuth and antimony chalcogenide family, where we isolate the response of Dirac fermions at the surface from the response of bulk carriers by combining photoexcitation with below-bandgap terahertz (THz) photons and TI samples with varying Fermi level, including one sample with the Fermi level located within the bandgap. We identify distinctly faster relaxation of charge carriers in the topologically protected Dirac surface states (few hundred femtoseconds), compared to bulk carriers (few picoseconds). In agreement with such fast cooling dynamics, we observe THz harmonic generation without any saturation effects for increasing incident fields, unlike graphene which exhibits strong saturation. This opens up promising avenues for increased THz nonlinear conversion efficiencies, and high-bandwidth optoelectronic and spintronic information and communication applications.

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