Photon-assisted tunnelling of zero modes in a Majorana wire

Research output: Contribution to journalJournal articleResearchpeer-review

Standard

Photon-assisted tunnelling of zero modes in a Majorana wire. / van Zanten, David M. T.; Sabonis, Deividas; Suter, Judith; Vayrynen, Jukka I.; Karzig, Torsten; Pikulin, Dmitry I.; O'Farrell, Eoin C. T.; Razmadze, Davydas; Petersson, Karl D.; Krogstrup, Peter; Marcus, Charles M.

In: Nature Physics, Vol. 16, No. 6, 13.04.2020, p. 663-668.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

van Zanten, DMT, Sabonis, D, Suter, J, Vayrynen, JI, Karzig, T, Pikulin, DI, O'Farrell, ECT, Razmadze, D, Petersson, KD, Krogstrup, P & Marcus, CM 2020, 'Photon-assisted tunnelling of zero modes in a Majorana wire', Nature Physics, vol. 16, no. 6, pp. 663-668. https://doi.org/10.1038/s41567-020-0858-0

APA

van Zanten, D. M. T., Sabonis, D., Suter, J., Vayrynen, J. I., Karzig, T., Pikulin, D. I., O'Farrell, E. C. T., Razmadze, D., Petersson, K. D., Krogstrup, P., & Marcus, C. M. (2020). Photon-assisted tunnelling of zero modes in a Majorana wire. Nature Physics, 16(6), 663-668. https://doi.org/10.1038/s41567-020-0858-0

Vancouver

van Zanten DMT, Sabonis D, Suter J, Vayrynen JI, Karzig T, Pikulin DI et al. Photon-assisted tunnelling of zero modes in a Majorana wire. Nature Physics. 2020 Apr 13;16(6):663-668. https://doi.org/10.1038/s41567-020-0858-0

Author

van Zanten, David M. T. ; Sabonis, Deividas ; Suter, Judith ; Vayrynen, Jukka I. ; Karzig, Torsten ; Pikulin, Dmitry I. ; O'Farrell, Eoin C. T. ; Razmadze, Davydas ; Petersson, Karl D. ; Krogstrup, Peter ; Marcus, Charles M. / Photon-assisted tunnelling of zero modes in a Majorana wire. In: Nature Physics. 2020 ; Vol. 16, No. 6. pp. 663-668.

Bibtex

@article{ee40175048714affb377dc94ff33f542,
title = "Photon-assisted tunnelling of zero modes in a Majorana wire",
abstract = "Majorana bound states at the end of nanowires may be used for quantum computation if they can be coupled sufficiently strongly. Here, the Copenhagen lab show strong and tunable coupling, a step along the road towards devices.Hybrid nanowires with proximity-induced superconductivity in the topological regime host Majorana zero modes at their ends. Networks of such structures can produce topologically protected qubits where the fundamental energy scale is given by the inter-pair coupling E-M between the zero modes belonging to different wire segments. Here we report on the spectroscopic measurement of E-M in an InAs/Al double-island device by tracking the position of the microwave-induced quasiparticle excitations using a radiofrequency charge sensor. At zero magnetic field, photon-assisted tunnelling of Cooper pairs allows us to estimate the Josephson coupling between the islands. In the presence of a magnetic field aligned along the nanowire, we observe the 1e periodic excitation spectrum resulting from a zero-energy subgap state that emerges in a magnetic field. The discrete 1e periodic excitation spectrum is consistent with the coherent hybridization of single-electron states belonging to two opposite-parity branches. The dependence of excitation frequency on detuning indicates a sizable (GHz-scale) and controllable hybridization of zero modes across the junction separating islands, a requirement for applications related to Majorana-based qubits.",
keywords = "STATES",
author = "{van Zanten}, {David M. T.} and Deividas Sabonis and Judith Suter and Vayrynen, {Jukka I.} and Torsten Karzig and Pikulin, {Dmitry I.} and O'Farrell, {Eoin C. T.} and Davydas Razmadze and Petersson, {Karl D.} and Peter Krogstrup and Marcus, {Charles M.}",
year = "2020",
month = apr,
day = "13",
doi = "10.1038/s41567-020-0858-0",
language = "English",
volume = "16",
pages = "663--668",
journal = "Nature Physics",
issn = "1745-2473",
publisher = "nature publishing group",
number = "6",

}

RIS

TY - JOUR

T1 - Photon-assisted tunnelling of zero modes in a Majorana wire

AU - van Zanten, David M. T.

AU - Sabonis, Deividas

AU - Suter, Judith

AU - Vayrynen, Jukka I.

AU - Karzig, Torsten

AU - Pikulin, Dmitry I.

AU - O'Farrell, Eoin C. T.

AU - Razmadze, Davydas

AU - Petersson, Karl D.

AU - Krogstrup, Peter

AU - Marcus, Charles M.

PY - 2020/4/13

Y1 - 2020/4/13

N2 - Majorana bound states at the end of nanowires may be used for quantum computation if they can be coupled sufficiently strongly. Here, the Copenhagen lab show strong and tunable coupling, a step along the road towards devices.Hybrid nanowires with proximity-induced superconductivity in the topological regime host Majorana zero modes at their ends. Networks of such structures can produce topologically protected qubits where the fundamental energy scale is given by the inter-pair coupling E-M between the zero modes belonging to different wire segments. Here we report on the spectroscopic measurement of E-M in an InAs/Al double-island device by tracking the position of the microwave-induced quasiparticle excitations using a radiofrequency charge sensor. At zero magnetic field, photon-assisted tunnelling of Cooper pairs allows us to estimate the Josephson coupling between the islands. In the presence of a magnetic field aligned along the nanowire, we observe the 1e periodic excitation spectrum resulting from a zero-energy subgap state that emerges in a magnetic field. The discrete 1e periodic excitation spectrum is consistent with the coherent hybridization of single-electron states belonging to two opposite-parity branches. The dependence of excitation frequency on detuning indicates a sizable (GHz-scale) and controllable hybridization of zero modes across the junction separating islands, a requirement for applications related to Majorana-based qubits.

AB - Majorana bound states at the end of nanowires may be used for quantum computation if they can be coupled sufficiently strongly. Here, the Copenhagen lab show strong and tunable coupling, a step along the road towards devices.Hybrid nanowires with proximity-induced superconductivity in the topological regime host Majorana zero modes at their ends. Networks of such structures can produce topologically protected qubits where the fundamental energy scale is given by the inter-pair coupling E-M between the zero modes belonging to different wire segments. Here we report on the spectroscopic measurement of E-M in an InAs/Al double-island device by tracking the position of the microwave-induced quasiparticle excitations using a radiofrequency charge sensor. At zero magnetic field, photon-assisted tunnelling of Cooper pairs allows us to estimate the Josephson coupling between the islands. In the presence of a magnetic field aligned along the nanowire, we observe the 1e periodic excitation spectrum resulting from a zero-energy subgap state that emerges in a magnetic field. The discrete 1e periodic excitation spectrum is consistent with the coherent hybridization of single-electron states belonging to two opposite-parity branches. The dependence of excitation frequency on detuning indicates a sizable (GHz-scale) and controllable hybridization of zero modes across the junction separating islands, a requirement for applications related to Majorana-based qubits.

KW - STATES

U2 - 10.1038/s41567-020-0858-0

DO - 10.1038/s41567-020-0858-0

M3 - Journal article

VL - 16

SP - 663

EP - 668

JO - Nature Physics

JF - Nature Physics

SN - 1745-2473

IS - 6

ER -

ID: 247439314