Majorana Fermions in Semiconductor Nanowires: Fundamentals, Modeling, and Experiment
Tudor D. Stanescu, Sumanta Tewari

TL;DR
This paper reviews recent progress in the search for Majorana fermions in semiconductor nanowires, highlighting experimental signatures, modeling approaches, and fundamental physics underlying their potential for topological quantum computing.
Contribution
It provides an updated overview of experimental and theoretical developments in realizing Majorana zero modes in semiconductor nanowire-superconductor systems.
Findings
Experimental signatures of Majorana bound states observed in nanowire-superconductor hybrids
Modeling bridges the gap between idealized theory and real experimental conditions
Recent advances suggest promising routes for topological quantum computation
Abstract
After a recent series of rapid and exciting developments, the long search for the Majorana fermion - the elusive quantum entity at the border between particles and antiparticles - has produced the first positive experimental results, but is not over yet. Originally proposed by E. Majorana in the context of particle physics, Majorana fermions have a condensed matter analog in the zero-energy bound states emerging in topological superconductors. A promising route to engineering topological superconductors capable of hosting Majorana zero modes consists of proximity coupling semiconductor thin films or nanowires with strong spin-orbit interaction to conventional s-wave superconductors in the presence of an external Zeeman field. The Majorana zero mode is predicted to emerge above a certain critical Zeeman field as a zero-energy state localized near the order parameter defects, viz.,…
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.
