Robust integer and fractional helical modes in the quantum Hall effect

Yuval Ronen, Yonatan Cohen, Daniel Banitt, Moty Heiblum, Vladimir Umansky

Research output: Contribution to journalArticlepeer-review

Abstract

Electronic systems harboring one-dimensional helical modes, where spin and momentum are locked, have lately become an important field of its own. When coupled to a conventional superconductor, such systems are expected to manifest topological superconductivity; a unique phase hosting exotic Majorana zero modes. Even more interesting are fractional helical modes, yet to be observed, which open the route for realizing generalized parafermions. Possessing non-abelian exchange statistics, these quasiparticles may serve as building blocks in topological quantum computing. Here, we present a new approach to form protected one-dimensional helical edge modes in the quantum Hall regime. The novel platform is based on a carefully designed double-quantum-well structure in a GaAs based system hosting two electronic sub-bands; each tuned to the quantum Hall effect regime. By electrostatic gating of different areas of the structure, counter-propagating integer, as well as fractional, edge modes with opposite spins are formed. We demonstrate that due to spin-protection, these helical modes remain ballistic for large distances. In addition to the formation of helical modes, this platform can serve as a rich playground for artificial induction of compounded fractional edge modes, and for construction of edge modes based interferometers.

Original languageEnglish
Pages (from-to)411-416
Number of pages6
JournalNature Physics
Volume14
Issue number4
Early online date22 Jan 2018
DOIs
StatePublished - Apr 2018

All Science Journal Classification (ASJC) codes

  • General Physics and Astronomy

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