Tuning spin orbit interaction in high quality gate-defined InAs one-dimensional channels
J. Shabani, Younghyun Kim, A. P. McFadden, R. M. Lutchyn, C. Nayak and, C. J. palmstr{\o}m

TL;DR
This paper demonstrates the creation and control of one-dimensional InAs channels with tunable spin-orbit interaction, maintaining high mobility, which is promising for quantum computing and spintronics applications.
Contribution
It reports the first realization of gate-defined InAs quantum wires with tunable spin-orbit coupling on large-area 2DESs, preserving high electron mobility.
Findings
Spin-orbit interaction strength can be measured and tuned.
High mobility is maintained in the one-dimensional channels.
Potential for scalable quantum wire networks.
Abstract
Spin-orbit coupling in solids describes an interaction between an electron's spin, an internal quantum-mechanical degree of freedom, with its linear momentum, an external property. Spin-orbit interaction, due to its relativistic nature, is typically small in solids, and is often taken into account perturbatively. It has been recently realized, however, that materials with strong spin-orbit coupling can lead to novel states of matter such as topological insulators and superconductors. This exciting development might lead to a number of useful applications ranging from spintronics to quantum computing. In particular, theory predicts that narrow band gap semiconductors with strong spin-obit coupling are a suitable platform for the realization of Majorana zero-energy modes, predicted to obey exotic non-Abelian braiding statistics. The pursuit for realizing Majorana modes in condensed matter…
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Taxonomy
TopicsTopological Materials and Phenomena · Quantum and electron transport phenomena · Electronic and Structural Properties of Oxides
