arXiv · 1602.02650
Josephson traveling-wave parametric amplifier with three-wave mixing
Abstract
We develop a concept of the traveling-wave Josephson parametric amplifier exploiting quadratic nonlinearity of a serial array of one-junction SQUIDs embedded in a superconducting transmission line. The external magnetic flux applied to the SQUIDs makes it possible to efficiently control the shape of their current-phase relation and, hence, the balance between quadratic and cubic (Kerr-like) nonlinearities. This property allows us to operate in the favorable three-wave-mixing mode with minimal phase mismatch, an exponential dependence of the power gain on number of sections $N$, a large bandwidth, a high dynamic range, and substantially separated signal ($f_s$) and pump ($f_p$) frequencies obeying relation $f_s+f_i = f_p$, where $f_i$ is the idler frequency. An estimation of the amplifier characteristics with typical experimental parameters, a pump frequency of $12$ GHz, and $N = 300$ yields a flat gain of 20 dB in the bandwidth of 5.6 GHz.
Explore related subjects
Keep this discovery
A. B. Zorin. 2016-09-19. Josephson traveling-wave parametric amplifier with three-wave mixing. https://doi.org/10.1103/physrevapplied.6.034006
Cite the original work for its findings. Save a collection to share your selection of sources.