Non-Abelian quantum order in spin-orbit-coupled semiconductors: The search for topological Majorana particles in solid state systems
Jay D. Sau, Sumanta Tewari, Roman Lutchyn, Tudor Stanescu, and S. Das, Sarma

TL;DR
This paper demonstrates that spin-orbit-coupled semiconductors with induced superconductivity and Zeeman coupling can host non-Abelian Majorana particles, providing a promising platform for topological quantum computation.
Contribution
It introduces a mechanism for realizing topological Majorana modes in semiconductors through a topological phase transition driven by Zeeman coupling.
Findings
Majorana zero modes appear above a critical Zeeman field
Zero-bias peaks in tunneling spectra indicate Majorana states
Proposes a feasible experimental setup for detecting Majorana fermions
Abstract
We show that an ordinary semiconducting thin film with spin-orbit coupling can, under ap- propriate circumstances, be in a quantum topologically ordered state supporting exotic Majorana excitations which follow non-Abelian statistics. The key to the quantum topological order is the coexistence of spin-orbit coupling with proximity-induced s-wave superconductivity and an externally-induced Zeeman coupling of the spins. For the Zeeman coupling below a critical value, the system is a non-topological (proximity-induced) s-wave superconductor. However, for a range of Zeeman coupling above the critical value, the lowest energy excited state inside a vortex is a zero-energy Majorana fermion state. The system, thus, has entered into a non-Abelian s-wave superconducting state via a topological quantum phase transition (TQPT) tuned by the Zeeman coupling. In the one-dimensional version of the…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
