| Literature DB >> 28736494 |
Justus A Brevik1, Nathan E Flowers-Jacobs1, Anna E Fox1, Evan B Golden1, Paul D Dresselhaus1, Samuel P Benz1.
Abstract
We describe the implementation of new commercial pulse-bias electronics that have enabled an improvement in the generation of quantum-accurate waveforms both with and without low-frequency compensation biases. We have used these electronics to apply a multilevel pulse bias to the Josephson arbitrary waveform synthesizer and have generated, for the first time, a quantum-accurate bipolar sinusoidal waveform without the use of a low-frequency compensation bias current. This uncompensated 1 kHz waveform was synthesized with an rms amplitude of 325 mV and maintained its quantum accuracy over a1.5 mA operating current range. The same technique and equipment was also used to synthesize a quantum-accurate 1 MHz sinusoid with a 1.2 mA operating margin. In addition, we have synthesized a compensated 1 kHz sinusoid with an rms amplitude of 1 V and a 2.7 mA operating margin.Entities:
Keywords: Digital-analog conversion; Josephson arrays; quantization; signal synthesis; standards; superconducting device measurements; superconducting integrated circuits; voltage measurement
Year: 2017 PMID: 28736494 PMCID: PMC5520655 DOI: 10.1109/TASC.2017.2662708
Source DB: PubMed Journal: IEEE Trans Appl Supercond