Low temperature saturation of phase coherence length in topological insulators
arXiv:1904.08517 · doi:10.1103/PhysRevB.99.245407
Abstract
Implementing topological insulators as elementary units in quantum technologies requires a comprehensive understanding of the dephasing mechanisms governing the surface carriers in these materials, which impose a practical limit to the applicability of these materials in such technologies requiring phase coherent transport. To investigate this, we have performed magneto-resistance (MR) and conductance fluctuations\ (CF) measurements in both exfoliated and molecular beam epitaxy grown samples. The phase breaking length () obtained from MR shows a saturation below sample dependent characteristic temperatures, consistent with that obtained from CF measurements. We have systematically eliminated several factors that may lead to such behavior of in the context of TIs, such as finite size effect, thermalization, spin-orbit coupling length, spin-flip scattering, and surface-bulk coupling. Our work indicates the need to identify an alternative source of dephasing that dominates at low in topological insulators, causing saturation in the phase breaking length and time.
References in corpus (11)
- Boron nitride substrates for high-quality graphene electronics
- Quantum Spin Hall Insulator State in HgTe Quantum Wells
- Strong suppression of weak (anti)localization in graphene
- Bulk Band Gap and Surface State Conduction Observed in Voltage-Tuned Crystals of the Topological Insulator BiSe
- Weak antilocalization in epitaxial graphene: evidence for chiral electrons
- Observation of Dirac Holes and Electrons in a Topological Insulator
- Interplay between ferromagnetism, surface states, and quantum corrections in a magnetically doped topological insulator
- Magneto-resistance up to 60 Tesla in Topological Insulator Bi2Te3 Thin Films
- Two-dimensional universal conductance fluctuations and the electron-phonon interaction of topological surface states in Bi2Te2Se nanoribbons
- Enhanced electron dephasing in three-dimensional topological insulators
- Electronic coherence in metals: comparing weak localization and time-dependent conductance fluctuations