IDEAS home Printed from https://ideas.repec.org/a/nat/natcom/v16y2025i1d10.1038_s41467-025-58279-3.html
   My bibliography  Save this article

High-fidelity sub-microsecond single-shot electron spin readout above 3.5 K

Author

Listed:
  • H. Geng

    (School of Physics, UNSW Sydney
    Silicon Quantum Computing Pty Ltd, UNSW Sydney)

  • M. Kiczynski

    (School of Physics, UNSW Sydney
    Silicon Quantum Computing Pty Ltd, UNSW Sydney)

  • A. V. Timofeev

    (School of Physics, UNSW Sydney
    Silicon Quantum Computing Pty Ltd, UNSW Sydney)

  • E. N. Osika

    (Silicon Quantum Computing Pty Ltd, UNSW Sydney)

  • D. Keith

    (School of Physics, UNSW Sydney
    Silicon Quantum Computing Pty Ltd, UNSW Sydney)

  • J. Rowlands

    (School of Physics, UNSW Sydney)

  • L. Kranz

    (School of Physics, UNSW Sydney
    Silicon Quantum Computing Pty Ltd, UNSW Sydney)

  • R. Rahman

    (Silicon Quantum Computing Pty Ltd, UNSW Sydney)

  • Y. Chung

    (School of Physics, UNSW Sydney
    Silicon Quantum Computing Pty Ltd, UNSW Sydney)

  • J. G. Keizer

    (School of Physics, UNSW Sydney
    Silicon Quantum Computing Pty Ltd, UNSW Sydney)

  • S. K. Gorman

    (School of Physics, UNSW Sydney
    Silicon Quantum Computing Pty Ltd, UNSW Sydney)

  • M. Y. Simmons

    (School of Physics, UNSW Sydney
    Silicon Quantum Computing Pty Ltd, UNSW Sydney)

Abstract

Electron spin qubits in semiconductors are a promising platform for large-scale quantum computing due to their small size, long coherence and manufacturability. Typically, readout in spin qubits has been performed using energy-selective readout with extremely high fidelities up to 99.95% at millikelvin temperatures. Despite achieving record fidelities at low electron temperatures, the readout time remains on the order of 1 μs to 100 μs and comparable to the electron spin coherence time. In this paper we show that by engineering the location of two multi-donor quantum dot qubits with nanoscale precision we can demonstrate latched parity readout of two electrons in only 175 ns integration time with a fidelity of 99.44% at mK temperatures. Most importantly we show that this combination of strong confinement potential present in donor qubits with precision engineering of the tunnel rates allows us to operate our compact sensors at the highest temperatures recorded so far (3.7 K) using latched spin readout, giving a maximum fidelity of 97.87% in 1.5 μs. Our results demonstrate a clear performance improvement of state preparation and measurement using donor systems and offer the real possibility for operation of the surface-code using electron spins in semiconductor qubits.

Suggested Citation

  • H. Geng & M. Kiczynski & A. V. Timofeev & E. N. Osika & D. Keith & J. Rowlands & L. Kranz & R. Rahman & Y. Chung & J. G. Keizer & S. K. Gorman & M. Y. Simmons, 2025. "High-fidelity sub-microsecond single-shot electron spin readout above 3.5 K," Nature Communications, Nature, vol. 16(1), pages 1-7, December.
  • Handle: RePEc:nat:natcom:v:16:y:2025:i:1:d:10.1038_s41467-025-58279-3
    DOI: 10.1038/s41467-025-58279-3
    as

    Download full text from publisher

    File URL: https://www.nature.com/articles/s41467-025-58279-3
    File Function: Abstract
    Download Restriction: no

    File URL: https://libkey.io/10.1038/s41467-025-58279-3?utm_source=ideas
    LibKey link: if access is restricted and if your library uses this service, LibKey will redirect you to where you can use your library subscription to access this item
    ---><---

    References listed on IDEAS

    as
    1. J. M. Elzerman & R. Hanson & L. H. Willems van Beveren & B. Witkamp & L. M. K. Vandersypen & L. P. Kouwenhoven, 2004. "Single-shot read-out of an individual electron spin in a quantum dot," Nature, Nature, vol. 430(6998), pages 431-435, July.
    2. Xiao Xue & Maximilian Russ & Nodar Samkharadze & Brennan Undseth & Amir Sammak & Giordano Scappucci & Lieven M. K. Vandersypen, 2022. "Quantum logic with spin qubits crossing the surface code threshold," Nature, Nature, vol. 601(7893), pages 343-347, January.
    3. Y. He & S. K. Gorman & D. Keith & L. Kranz & J. G. Keizer & M. Y. Simmons, 2019. "A two-qubit gate between phosphorus donor electrons in silicon," Nature, Nature, vol. 571(7765), pages 371-375, July.
    4. L. Petit & H. G. J. Eenink & M. Russ & W. I. L. Lawrie & N. W. Hendrickx & S. G. J. Philips & J. S. Clarke & L. M. K. Vandersypen & M. Veldhorst, 2020. "Universal quantum logic in hot silicon qubits," Nature, Nature, vol. 580(7803), pages 355-359, April.
    5. B. M. Maune & M. G. Borselli & B. Huang & T. D. Ladd & P. W. Deelman & K. S. Holabird & A. A. Kiselev & I. Alvarado-Rodriguez & R. S. Ross & A. E. Schmitz & M. Sokolich & C. A. Watson & M. F. Gyure & , 2012. "Coherent singlet-triplet oscillations in a silicon-based double quantum dot," Nature, Nature, vol. 481(7381), pages 344-347, January.
    6. M. A. Fogarty & K. W. Chan & B. Hensen & W. Huang & T. Tanttu & C. H. Yang & A. Laucht & M. Veldhorst & F. E. Hudson & K. M. Itoh & D. Culcer & T. D. Ladd & A. Morello & A. S. Dzurak, 2018. "Integrated silicon qubit platform with single-spin addressability, exchange control and single-shot singlet-triplet readout," Nature Communications, Nature, vol. 9(1), pages 1-8, December.
    7. Kenta Takeda & Akito Noiri & Takashi Nakajima & Takashi Kobayashi & Seigo Tarucha, 2022. "Quantum error correction with silicon spin qubits," Nature, Nature, vol. 608(7924), pages 682-686, August.
    8. Aaron J. Weinstein & Matthew D. Reed & Aaron M. Jones & Reed W. Andrews & David Barnes & Jacob Z. Blumoff & Larken E. Euliss & Kevin Eng & Bryan H. Fong & Sieu D. Ha & Daniel R. Hulbert & Clayton A. C, 2023. "Universal logic with encoded spin qubits in silicon," Nature, Nature, vol. 615(7954), pages 817-822, March.
    9. Akito Noiri & Kenta Takeda & Takashi Nakajima & Takashi Kobayashi & Amir Sammak & Giordano Scappucci & Seigo Tarucha, 2022. "Fast universal quantum gate above the fault-tolerance threshold in silicon," Nature, Nature, vol. 601(7893), pages 338-342, January.
    10. C. H. Yang & R. C. C. Leon & J. C. C. Hwang & A. Saraiva & T. Tanttu & W. Huang & J. Camirand Lemyre & K. W. Chan & K. Y. Tan & F. E. Hudson & K. M. Itoh & A. Morello & M. Pioro-Ladrière & A. Laucht &, 2020. "Operation of a silicon quantum processor unit cell above one kelvin," Nature, Nature, vol. 580(7803), pages 350-354, April.
    11. M. A. Broome & S. K. Gorman & M. G. House & S. J. Hile & J. G. Keizer & D. Keith & C. D. Hill & T. F. Watson & W. J. Baker & L. C. L. Hollenberg & M. Y. Simmons, 2018. "Two-electron spin correlations in precision placed donors in silicon," Nature Communications, Nature, vol. 9(1), pages 1-7, December.
    12. R. Zhao & T. Tanttu & K. Y. Tan & B. Hensen & K. W. Chan & J. C. C. Hwang & R. C. C. Leon & C. H. Yang & W. Gilbert & F. E. Hudson & K. M. Itoh & A. A. Kiselev & T. D. Ladd & A. Morello & A. Laucht & , 2019. "Single-spin qubits in isotopically enriched silicon at low magnetic field," Nature Communications, Nature, vol. 10(1), pages 1-9, December.
    13. Lukas Fricke & Samuel J. Hile & Ludwik Kranz & Yousun Chung & Yu He & Prasanna Pakkiam & Matthew G. House & Joris G. Keizer & Michelle Y. Simmons, 2021. "Coherent control of a donor-molecule electron spin qubit in silicon," Nature Communications, Nature, vol. 12(1), pages 1-6, December.
    14. T. F. Watson & S. G. J. Philips & E. Kawakami & D. R. Ward & P. Scarlino & M. Veldhorst & D. E. Savage & M. G. Lagally & Mark Friesen & S. N. Coppersmith & M. A. Eriksson & L. M. K. Vandersypen, 2018. "A programmable two-qubit quantum processor in silicon," Nature, Nature, vol. 555(7698), pages 633-637, March.
    Full references (including those not matched with items on IDEAS)

    Most related items

    These are the items that most often cite the same works as this one and are cited by the same works as this one.
    1. Matthias Künne & Alexander Willmes & Max Oberländer & Christian Gorjaew & Julian D. Teske & Harsh Bhardwaj & Max Beer & Eugen Kammerloher & René Otten & Inga Seidler & Ran Xue & Lars R. Schreiber & He, 2024. "The SpinBus architecture for scaling spin qubits with electron shuttling," Nature Communications, Nature, vol. 15(1), pages 1-11, December.
    2. Akito Noiri & Kenta Takeda & Takashi Nakajima & Takashi Kobayashi & Amir Sammak & Giordano Scappucci & Seigo Tarucha, 2022. "A shuttling-based two-qubit logic gate for linking distant silicon quantum processors," Nature Communications, Nature, vol. 13(1), pages 1-7, December.
    3. Ingvild Hansen & Amanda E. Seedhouse & Santiago Serrano & Andreas Nickl & MengKe Feng & Jonathan Y. Huang & Tuomo Tanttu & Nard Dumoulin Stuyck & Wee Han Lim & Fay E. Hudson & Kohei M. Itoh & Andre Sa, 2024. "Entangling gates on degenerate spin qubits dressed by a global field," Nature Communications, Nature, vol. 15(1), pages 1-7, December.
    4. Floor Riggelen-Doelman & Chien-An Wang & Sander L. Snoo & William I. L. Lawrie & Nico W. Hendrickx & Maximilian Rimbach-Russ & Amir Sammak & Giordano Scappucci & Corentin Déprez & Menno Veldhorst, 2024. "Coherent spin qubit shuttling through germanium quantum dots," Nature Communications, Nature, vol. 15(1), pages 1-9, December.
    5. Holly G. Stemp & Serwan Asaad & Mark R. van Blankenstein & Arjen Vaartjes & Mark A. I. Johnson & Mateusz T. Mądzik & Amber J. A. Heskes & Hannes R. Firgau & Rocky Y. Su & Chih Hwan Yang & Arne Laucht , 2024. "Tomography of entangling two-qubit logic operations in exchange-coupled donor electron spin qubits," Nature Communications, Nature, vol. 15(1), pages 1-10, December.
    6. Brian Paquelet Wuetz & Merritt P. Losert & Sebastian Koelling & Lucas E. A. Stehouwer & Anne-Marije J. Zwerver & Stephan G. J. Philips & Mateusz T. Mądzik & Xiao Xue & Guoji Zheng & Mario Lodari & Ser, 2022. "Atomic fluctuations lifting the energy degeneracy in Si/SiGe quantum dots," Nature Communications, Nature, vol. 13(1), pages 1-8, December.
    7. Jaemin Park & Hyeongyu Jang & Hanseo Sohn & Jonginn Yun & Younguk Song & Byungwoo Kang & Lucas E. A. Stehouwer & Davide Degli Esposti & Giordano Scappucci & Dohun Kim, 2025. "Passive and active suppression of transduced noise in silicon spin qubits," Nature Communications, Nature, vol. 16(1), pages 1-8, December.
    8. Brian Paquelet Wuetz & Davide Degli Esposti & Anne-Marije J. Zwerver & Sergey V. Amitonov & Marc Botifoll & Jordi Arbiol & Amir Sammak & Lieven M. K. Vandersypen & Maximilian Russ & Giordano Scappucci, 2023. "Reducing charge noise in quantum dots by using thin silicon quantum wells," Nature Communications, Nature, vol. 14(1), pages 1-9, December.
    9. Tom Struck & Mats Volmer & Lino Visser & Tobias Offermann & Ran Xue & Jhih-Sian Tu & Stefan Trellenkamp & Łukasz Cywiński & Hendrik Bluhm & Lars R. Schreiber, 2024. "Spin-EPR-pair separation by conveyor-mode single electron shuttling in Si/SiGe," Nature Communications, Nature, vol. 15(1), pages 1-8, December.
    10. Paul Steinacker & Tuomo Tanttu & Wee Han Lim & Nard Dumoulin Stuyck & MengKe Feng & Santiago Serrano & Ensar Vahapoglu & Rocky Y. Su & Jonathan Y. Huang & Cameron Jones & Kohei M. Itoh & Fay E. Hudson, 2025. "Bell inequality violation in gate-defined quantum dots," Nature Communications, Nature, vol. 16(1), pages 1-9, December.
    11. Elliot J. Connors & J. Nelson & Lisa F. Edge & John M. Nichol, 2022. "Charge-noise spectroscopy of Si/SiGe quantum dots via dynamically-decoupled exchange oscillations," Nature Communications, Nature, vol. 13(1), pages 1-9, December.
    12. Kosuke Noro & Yusuke Kozuka & Kazuma Matsumura & Takeshi Kumasaka & Yoshihiro Fujiwara & Atsushi Tsukazaki & Masashi Kawasaki & Tomohiro Otsuka, 2024. "Parity-independent Kondo effect of correlated electrons in electrostatically defined ZnO quantum dots," Nature Communications, Nature, vol. 15(1), pages 1-8, December.
    13. Andreas Gritsch & Alexander Ulanowski & Jakob Pforr & Andreas Reiserer, 2025. "Optical single-shot readout of spin qubits in silicon," Nature Communications, Nature, vol. 16(1), pages 1-7, December.
    14. Sitan Chen & Jordan Cotler & Hsin-Yuan Huang & Jerry Li, 2023. "The complexity of NISQ," Nature Communications, Nature, vol. 14(1), pages 1-6, December.
    15. Ran Xue & Max Beer & Inga Seidler & Simon Humpohl & Jhih-Sian Tu & Stefan Trellenkamp & Tom Struck & Hendrik Bluhm & Lars R. Schreiber, 2024. "Si/SiGe QuBus for single electron information-processing devices with memory and micron-scale connectivity function," Nature Communications, Nature, vol. 15(1), pages 1-7, December.
    16. Nadia O. Antoniadis & Mark R. Hogg & Willy F. Stehl & Alisa Javadi & Natasha Tomm & Rüdiger Schott & Sascha R. Valentin & Andreas D. Wieck & Arne Ludwig & Richard J. Warburton, 2023. "Cavity-enhanced single-shot readout of a quantum dot spin within 3 nanoseconds," Nature Communications, Nature, vol. 14(1), pages 1-7, December.
    17. Jesús D. Cifuentes & Tuomo Tanttu & Will Gilbert & Jonathan Y. Huang & Ensar Vahapoglu & Ross C. C. Leon & Santiago Serrano & Dennis Otter & Daniel Dunmore & Philip Y. Mai & Frédéric Schlattner & Meng, 2024. "Bounds to electron spin qubit variability for scalable CMOS architectures," Nature Communications, Nature, vol. 15(1), pages 1-14, December.
    18. L. Banszerus & K. Hecker & S. Möller & E. Icking & K. Watanabe & T. Taniguchi & C. Volk & C. Stampfer, 2022. "Spin relaxation in a single-electron graphene quantum dot," Nature Communications, Nature, vol. 13(1), pages 1-6, December.
    19. Jaeyong Jeong & Seong Kwang Kim & Yoon-Je Suh & Jisung Lee & Joonyoung Choi & Joon Pyo Kim & Bong Ho Kim & Juhyuk Park & Joonsup Shim & Nahyun Rheem & Chan Jik Lee & Younjung Jo & Dae-Myeong Geum & Se, 2024. "Cryogenic III-V and Nb electronics integrated on silicon for large-scale quantum computing platforms," Nature Communications, Nature, vol. 15(1), pages 1-10, December.
    20. Ryan M. Jock & N. Tobias Jacobson & Martin Rudolph & Daniel R. Ward & Malcolm S. Carroll & Dwight R. Luhman, 2022. "A silicon singlet–triplet qubit driven by spin-valley coupling," Nature Communications, Nature, vol. 13(1), pages 1-9, December.

    More about this item

    Statistics

    Access and download statistics

    Corrections

    All material on this site has been provided by the respective publishers and authors. You can help correct errors and omissions. When requesting a correction, please mention this item's handle: RePEc:nat:natcom:v:16:y:2025:i:1:d:10.1038_s41467-025-58279-3. See general information about how to correct material in RePEc.

    If you have authored this item and are not yet registered with RePEc, we encourage you to do it here. This allows to link your profile to this item. It also allows you to accept potential citations to this item that we are uncertain about.

    If CitEc recognized a bibliographic reference but did not link an item in RePEc to it, you can help with this form .

    If you know of missing items citing this one, you can help us creating those links by adding the relevant references in the same way as above, for each refering item. If you are a registered author of this item, you may also want to check the "citations" tab in your RePEc Author Service profile, as there may be some citations waiting for confirmation.

    For technical questions regarding this item, or to correct its authors, title, abstract, bibliographic or download information, contact: Sonal Shukla or Springer Nature Abstracting and Indexing (email available below). General contact details of provider: http://www.nature.com .

    Please note that corrections may take a couple of weeks to filter through the various RePEc services.

    IDEAS is a RePEc service. RePEc uses bibliographic data supplied by the respective publishers.