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An electron turnstile for frequency-to-power conversion

  • Moscow Institute of Physics and Technology

Research output: Contribution to journalLetterScientificpeer-review

12 Citations (Scopus)
113 Downloads (Pure)

Abstract

Single-electron transport relates an operation frequency f to the emitted current I through the electron charge e as I = ef (refs. 1–5). Similarly, direct frequency-to-power conversion (FPC) links both quantities through a known energy. FPC is a natural candidate for a power standard resorting to the most basic definition of the watt: energy emitted per unit of time. The energy is traceable to Planck’s constant and the time is in turn traceable to the unperturbed ground state hyperfine transition frequency of the caesium 133 atom. Hence, FPC comprises a simple and elegant way to realize the watt6. In this spirit, single-photon emission7,8 and detection9 at known rates have been proposed as radiometric standards and experimentally realized10–14. However, power standards are so far only traceable to electrical units, that is, to the volt and the ohm6,15–17. In this Letter, we demonstrate an alternative proposal based on solid-state direct FPC using a hybrid single-electron transistor (SET). The SET injects n (integer) quasi-particles (QPs) per cycle into the two superconducting leads with discrete energies close to their superconducting gap Δ, even at zero source-drain voltage. Furthermore, the application of a bias voltage can vary the distribution of the power among the two leads, allowing for an almost equal power injection nΔf into the two. While in single-electron transport current is related to a fixed universal constant (e), in our approach Δ is a material-dependent quantity. We estimate that under optimized conditions errors can be well below 1%.

Original languageEnglish
Pages (from-to)239-243
Number of pages5
JournalNature Nanotechnology
Volume17
Issue number3
Early online date2022
DOIs
Publication statusPublished - Mar 2022
MoE publication typeB1 Non-refereed journal articles

Funding

We acknowledge O. Maillet and E. T. Mannila for useful discussions. This research made use of the Otaniemi Research Infrastructure for Micro and Nanotechnologies (OtaNano) and its Low Temperature Laboratory. We are grateful for funding from the Academy of Finland through grant 312057. M.M.-S. and J.P.P. acknowledge support from the European Union’s Horizon 2020 research and innovation programme under the European Research Council (ERC) programme (grant agreement 742559). J.P.P. acknowledges funding from the Russian Science Foundation (grant No. 20-62-46026).

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  • QTF: Finnish Centre of Excellence in Quantum Technology

    Pekola, J. (Principal investigator), Golubev, D. (Project Member), Blanchet, F. (Project Member), Maillet, O. (Project Member), Mannila, E. (Project Member) & Marín Suárez, M. (Project Member)

    01/01/201831/12/2020

    Project: Academy of Finland: Other research funding

  • SQH: Superconducting quantum heat engines and refrigerators

    Pekola, J. (Principal investigator), Subero Rengel, D. (Project Member), Chiang, K.-H. (Project Member), Gubaydullin, A. (Project Member), Chang, Y.-C. (Project Member), Singh, S. (Project Member), Thomas, G. (Project Member), Upadhyay, R. (Project Member), von Scarpatetti, C. (Project Member), Serrati, E. (Project Member), Blanchet, F. (Project Member), Praks, E. (Project Member), Peltonen, J. (Project Member), Strelnikov, A. (Project Member), Chen, Z.-Y. (Project Member), Senior, J. (Project Member), Mannila, E. (Project Member), Lvov, D. (Project Member), Marín Suárez, M. (Project Member), Satrya, C. (Project Member), Lemziakov, S. (Project Member), Mäkinen, I. (Project Member), Dumas, H. (Project Member), Wang, L. (Project Member) & Karimi, B. (Project Member)

    27/09/201730/09/2023

    Project: EU: ERC grants

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