Phase transition and anomalous scaling in the quantum Hall transport of topological-insulator Sn-Bi<sub>1.1</sub>Sb<sub>0.9</sub>Te<sub>2</sub>S devices
ORAL
Abstract
The scaling physics of quantum Hall transport in optimized topological insulators with a plateau precision of ∼1/1000 e2/h is considered. Two exponential scaling regimes are observed in temperature-dependent transport dissipation, one of which accords with thermal-activation behavior with a gap of 2.8 meV (>20 K), the other being attributed to variable-range hopping (1–20 K). Magnetic-field-driven plateau-to-plateau transition gives scaling relations of (dRxy/dB)max ∝ T −κ and △B−1 ∝ T −κ with a onsistent exponent of κ ∼ 0.2, which is half the universal value for a conventional two-dimensional electron gas. This is evidence of percolation assisted by quantum tunneling and reveals the dominance of electron-electron interaction of the topological surface states.
*This work was supported by the National Key R&D Program of China (Grant No. 2017YFA0303200), the National Natural Science Foundation of China (Grants No.U1732273, No. U1732159, No. 91622115, No. 11522432, and No. 11574217), the Natural Science Foundation of Jiangsu Province (Grant No. BK20160659), and the Fundamental Research Funds for the Central Universities.
Presenters
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Faji Xie
- Nanjing University