Engineered platforms for topological superconductivity and Majorana zero modes

Research output: Contribution to journalReviewResearchpeer-review

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Engineered platforms for topological superconductivity and Majorana zero modes. / Flensberg, Karsten; von Oppen, Felix; Stern, Ady.

In: Nature Reviews Materials, Vol. 6, 06.07.2021, p. 944-958.

Research output: Contribution to journalReviewResearchpeer-review

Harvard

Flensberg, K, von Oppen, F & Stern, A 2021, 'Engineered platforms for topological superconductivity and Majorana zero modes', Nature Reviews Materials, vol. 6, pp. 944-958. https://doi.org/10.1038/s41578-021-00336-6

APA

Flensberg, K., von Oppen, F., & Stern, A. (2021). Engineered platforms for topological superconductivity and Majorana zero modes. Nature Reviews Materials, 6, 944-958. https://doi.org/10.1038/s41578-021-00336-6

Vancouver

Flensberg K, von Oppen F, Stern A. Engineered platforms for topological superconductivity and Majorana zero modes. Nature Reviews Materials. 2021 Jul 6;6:944-958. https://doi.org/10.1038/s41578-021-00336-6

Author

Flensberg, Karsten ; von Oppen, Felix ; Stern, Ady. / Engineered platforms for topological superconductivity and Majorana zero modes. In: Nature Reviews Materials. 2021 ; Vol. 6. pp. 944-958.

Bibtex

@article{5984c81b9212499a982af4e4732e8ef0,
title = "Engineered platforms for topological superconductivity and Majorana zero modes",
abstract = "Topological qubits are attractive because of the potential to store quantum information in a topologically protected manner; however, they are challenging to realize. This Review surveys the recent attempts to realize topological qubits out of materials systems that combine superconductivity, spin-orbit coupling and a magnetic field, and surveys both theoretical ideas and experimental results.Among the major avenues that are being pursued for realizing quantum bits, the Majorana-based approach has been the most recent to be launched. It attempts to realize qubits that store quantum information in a topologically protected manner. The quantum information is protected by non-local storage in localized and well-separated Majorana zero modes, and manipulated by exploiting their non-abelian quantum statistics. Realizing these topological qubits is experimentally challenging, requiring superconductivity, helical electrons (created by spin-orbit coupling) and breaking of time-reversal symmetry to all cooperate in an uncomfortable alliance. Over the past decade, several candidate materials systems for realizing Majorana-based topological qubits have been explored, and there is accumulating, though still debated, evidence that zero modes are indeed being realized. This Review surveys the basic physical principles on which these approaches are based, the materials systems that are being developed and the current state of the field. We highlight both the progress that has been made and the challenges that still need to be overcome.",
keywords = "BOUND-STATES, NANOWIRE, FERMIONS, SIGNATURE, PARITY, PAIR",
author = "Karsten Flensberg and {von Oppen}, Felix and Ady Stern",
year = "2021",
month = jul,
day = "6",
doi = "10.1038/s41578-021-00336-6",
language = "English",
volume = "6",
pages = "944--958",
journal = "Nature Reviews Materials",
issn = "2058-8437",
publisher = "Nature Publishing Group",

}

RIS

TY - JOUR

T1 - Engineered platforms for topological superconductivity and Majorana zero modes

AU - Flensberg, Karsten

AU - von Oppen, Felix

AU - Stern, Ady

PY - 2021/7/6

Y1 - 2021/7/6

N2 - Topological qubits are attractive because of the potential to store quantum information in a topologically protected manner; however, they are challenging to realize. This Review surveys the recent attempts to realize topological qubits out of materials systems that combine superconductivity, spin-orbit coupling and a magnetic field, and surveys both theoretical ideas and experimental results.Among the major avenues that are being pursued for realizing quantum bits, the Majorana-based approach has been the most recent to be launched. It attempts to realize qubits that store quantum information in a topologically protected manner. The quantum information is protected by non-local storage in localized and well-separated Majorana zero modes, and manipulated by exploiting their non-abelian quantum statistics. Realizing these topological qubits is experimentally challenging, requiring superconductivity, helical electrons (created by spin-orbit coupling) and breaking of time-reversal symmetry to all cooperate in an uncomfortable alliance. Over the past decade, several candidate materials systems for realizing Majorana-based topological qubits have been explored, and there is accumulating, though still debated, evidence that zero modes are indeed being realized. This Review surveys the basic physical principles on which these approaches are based, the materials systems that are being developed and the current state of the field. We highlight both the progress that has been made and the challenges that still need to be overcome.

AB - Topological qubits are attractive because of the potential to store quantum information in a topologically protected manner; however, they are challenging to realize. This Review surveys the recent attempts to realize topological qubits out of materials systems that combine superconductivity, spin-orbit coupling and a magnetic field, and surveys both theoretical ideas and experimental results.Among the major avenues that are being pursued for realizing quantum bits, the Majorana-based approach has been the most recent to be launched. It attempts to realize qubits that store quantum information in a topologically protected manner. The quantum information is protected by non-local storage in localized and well-separated Majorana zero modes, and manipulated by exploiting their non-abelian quantum statistics. Realizing these topological qubits is experimentally challenging, requiring superconductivity, helical electrons (created by spin-orbit coupling) and breaking of time-reversal symmetry to all cooperate in an uncomfortable alliance. Over the past decade, several candidate materials systems for realizing Majorana-based topological qubits have been explored, and there is accumulating, though still debated, evidence that zero modes are indeed being realized. This Review surveys the basic physical principles on which these approaches are based, the materials systems that are being developed and the current state of the field. We highlight both the progress that has been made and the challenges that still need to be overcome.

KW - BOUND-STATES

KW - NANOWIRE

KW - FERMIONS

KW - SIGNATURE

KW - PARITY

KW - PAIR

U2 - 10.1038/s41578-021-00336-6

DO - 10.1038/s41578-021-00336-6

M3 - Review

VL - 6

SP - 944

EP - 958

JO - Nature Reviews Materials

JF - Nature Reviews Materials

SN - 2058-8437

ER -

ID: 276380048