A primary quantum current standard based on the Josephson and the quantum Hall effects
Sophie Djordjevic, Ralf Behr, W. Poirier

TL;DR
This paper introduces a new quantum current standard that combines Josephson and quantum Hall effects with superconducting amplification, achieving highly accurate current generation at the microampere level with uncertainties below 10^{-8}.
Contribution
It presents a novel programmable quantum current generator integrating quantum standards and superconducting amplification, enabling error-free current scaling and high-precision quantum electrical measurements.
Findings
Achieved current quantization with less than 10^{-8} uncertainty.
Demonstrated accurate current generation at microampere levels.
Established a basis for universal quantum electrical units.
Abstract
The new definition of the ampere calls for a quantum current standard able to deliver a flow of elementary charges, , controlled with a relative uncertainty of . Despite many efforts, nanodevices handling electrons one by one have never demonstrated such an accuracy for a net flow. The alternative route based on applying Ohm's law to the Josephson voltage and quantum Hall standards recently reached the target uncertainty in the milliampere range, but this was at the expense of the application of error corrections. Here, we present a new programmable quantum current generator, which combines both quantum standards and a superconducting cryogenic amplifier in a quantum electrical circuit enabling the current scaling without errors. Thanks to a full quantum instrumentation, we demonstrate the accuracy of the generated currents, in the microampere range, at quantized values,…
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