Quasi-two-dimensional electron gas at the oxide interfaces for topological quantum physics

Journal Article (2021)
Authors

A. Barthelemy (CNRS)

N. Bergeal (ESPCI)

M. Bibes (CNRS)

Andrea Caviglia (TU Delft - QN/Caviglia Lab, Kavli institute of nanoscience Delft)

Roberta Citro (Istituto superconduttori, materiali innovativi e dispositivi, Consiglio Nazionale delle Ricerche, University of Salerno)

M. Cuoco (Istituto superconduttori, materiali innovativi e dispositivi, Consiglio Nazionale delle Ricerche)

Alexei Kalaboukhov (Chalmers University of Technology)

B. Kalisky (Bar-Ilan University)

A. Perroni (Università degli Studi di Napoli Federico II)

G.B. More authors (External organisation)

Research Group
QN/Caviglia Lab
To reference this document use:
https://doi.org/10.1209/0295-5075/133/17001
More Info
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Publication Year
2021
Language
English
Research Group
QN/Caviglia Lab
Issue number
1
Volume number
133
DOI:
https://doi.org/10.1209/0295-5075/133/17001

Abstract

The development of “fault-tolerant” quantum computers, unaffected by noise and decoherence, is one of the fundamental challenges in quantum technology. One of the approaches currently followed is the realization of “topologically protected” qubits which make use of quantum systems characterized by a degenerate ground state of composite particles, known as “non-Abelian anyons”, able to encode and manipulate quantum information in a non-local manner. In this paper, we discuss the potential of quasi-two-dimensional electron gas (q2DEG) at the interface between band insulating oxides, like LaAlO3 and SrTiO3, as an innovative technological platform for the realization of topological quantum systems. Being characterized by a unique combination of unconventional spin-orbit coupling, magnetism, and 2D-superconductivity, these systems naturally possess most of the fundamental characteristics needed for the realization of a topological superconductor. These properties can be widely tuned by electric field effect acting on the orbital splitting and occupation of the non-degenerate 3dxy and 3dxz,yz bands. The topological state in oxide q2DEGs quasi-one-dimensional nanochannels could be therefore suitably controlled, leading to conceptual new methods for the realization of a topological quantum electronics based on the tuning of the orbital degrees of freedom.

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