Practical Quantum Realization of the Ampere from the Elementary Charge
One major change of the future revision of the International System of Units is a new definition of the ampere based on the elementary charge e. Replacing the former definition based on Ampère’s force law will allow one to fully benefit from quantum physics to realize the ampere. However, a quantum...
Main Authors: | , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
American Physical Society
2016-12-01
|
Series: | Physical Review X |
Online Access: | http://doi.org/10.1103/PhysRevX.6.041051 |
id |
doaj-a07030dc3da3408db7f24dec3d880bbc |
---|---|
record_format |
Article |
spelling |
doaj-a07030dc3da3408db7f24dec3d880bbc2020-11-24T22:45:30ZengAmerican Physical SocietyPhysical Review X2160-33082016-12-016404105110.1103/PhysRevX.6.041051Practical Quantum Realization of the Ampere from the Elementary ChargeJ. Brun-PicardS. DjordjevicD. LepratF. SchopferW. PoirierOne major change of the future revision of the International System of Units is a new definition of the ampere based on the elementary charge e. Replacing the former definition based on Ampère’s force law will allow one to fully benefit from quantum physics to realize the ampere. However, a quantum realization of the ampere from e, accurate to within 10^{-8} in relative value and fulfilling traceability needs, is still missing despite the many efforts made for the development of single-electron tunneling devices. Starting again with Ohm’s law, applied here in a quantum circuit combining the quantum Hall resistance and Josephson voltage standards with a superconducting cryogenic amplifier, we report on a practical and universal programmable quantum current generator. We demonstrate that currents generated in the milliampere range are accurately quantized in terms of ef_{J} (f_{J} is the Josephson frequency) with measurement uncertainty of 10^{-8}. This new quantum current source, which is able to deliver such accurate currents down to the microampere range, can greatly improve the current measurement traceability, as demonstrated with the calibrations of digital ammeters. In addition, it opens the way to further developments in metrology and in fundamental physics, such as a quantum multimeter or new accurate comparisons to single-electron pumps.http://doi.org/10.1103/PhysRevX.6.041051 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
J. Brun-Picard S. Djordjevic D. Leprat F. Schopfer W. Poirier |
spellingShingle |
J. Brun-Picard S. Djordjevic D. Leprat F. Schopfer W. Poirier Practical Quantum Realization of the Ampere from the Elementary Charge Physical Review X |
author_facet |
J. Brun-Picard S. Djordjevic D. Leprat F. Schopfer W. Poirier |
author_sort |
J. Brun-Picard |
title |
Practical Quantum Realization of the Ampere from the Elementary Charge |
title_short |
Practical Quantum Realization of the Ampere from the Elementary Charge |
title_full |
Practical Quantum Realization of the Ampere from the Elementary Charge |
title_fullStr |
Practical Quantum Realization of the Ampere from the Elementary Charge |
title_full_unstemmed |
Practical Quantum Realization of the Ampere from the Elementary Charge |
title_sort |
practical quantum realization of the ampere from the elementary charge |
publisher |
American Physical Society |
series |
Physical Review X |
issn |
2160-3308 |
publishDate |
2016-12-01 |
description |
One major change of the future revision of the International System of Units is a new definition of the ampere based on the elementary charge e. Replacing the former definition based on Ampère’s force law will allow one to fully benefit from quantum physics to realize the ampere. However, a quantum realization of the ampere from e, accurate to within 10^{-8} in relative value and fulfilling traceability needs, is still missing despite the many efforts made for the development of single-electron tunneling devices. Starting again with Ohm’s law, applied here in a quantum circuit combining the quantum Hall resistance and Josephson voltage standards with a superconducting cryogenic amplifier, we report on a practical and universal programmable quantum current generator. We demonstrate that currents generated in the milliampere range are accurately quantized in terms of ef_{J} (f_{J} is the Josephson frequency) with measurement uncertainty of 10^{-8}. This new quantum current source, which is able to deliver such accurate currents down to the microampere range, can greatly improve the current measurement traceability, as demonstrated with the calibrations of digital ammeters. In addition, it opens the way to further developments in metrology and in fundamental physics, such as a quantum multimeter or new accurate comparisons to single-electron pumps. |
url |
http://doi.org/10.1103/PhysRevX.6.041051 |
work_keys_str_mv |
AT jbrunpicard practicalquantumrealizationoftheamperefromtheelementarycharge AT sdjordjevic practicalquantumrealizationoftheamperefromtheelementarycharge AT dleprat practicalquantumrealizationoftheamperefromtheelementarycharge AT fschopfer practicalquantumrealizationoftheamperefromtheelementarycharge AT wpoirier practicalquantumrealizationoftheamperefromtheelementarycharge |
_version_ |
1716470991329165312 |