Many-Body Majorana Braiding without an Exponential Hilbert Space

Eric Mascot, Themba Hodge, Dan Crawford, Jasmin Bedow, Dirk K. Morr, and Stephan Rachel
Phys. Rev. Lett. 131, 176601 – Published 24 October 2023

Abstract

Qubits built out of Majorana zero modes constitute the primary path toward topologically protected quantum computing. Simulating the braiding process of multiple Majorana zero modes corresponds to the quantum dynamics of a superconducting many-body system. It is crucial to study the Majorana dynamics both in the presence of all other quasiparticles and for reasonably large system sizes. We present a method to calculate arbitrary many-body wave functions as well as their expectation values, correlators, and overlaps from time evolved single-particle states of a superconductor, allowing for significantly larger system sizes. We calculate the fidelity, transition probabilities, and joint parities of Majorana pairs to track the quality of the braiding process. We show how the braiding success depends on the speed of the braid. Moreover, we demonstrate the topological CNOT two-qubit gate as an example of two-qubit entanglement. Our Letter opens the path to test and analyze the many theoretical implementations of Majorana qubits. Moreover, this method can be used to study the dynamics of any noninteracting superconductor.

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  • Received 28 March 2023
  • Accepted 6 September 2023

DOI:https://doi.org/10.1103/PhysRevLett.131.176601

© 2023 American Physical Society

Physics Subject Headings (PhySH)

Condensed Matter, Materials & Applied Physics

Authors & Affiliations

Eric Mascot1, Themba Hodge1, Dan Crawford1, Jasmin Bedow2, Dirk K. Morr2, and Stephan Rachel1

  • 1School of Physics, University of Melbourne, Parkville, Victoria 3010, Australia
  • 2University of Illinois at Chicago, Chicago, Illinois 60607, USA

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Vol. 131, Iss. 17 — 27 October 2023

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