O'Brien Kevin, Macklin Chris, Siddiqi Irfan, Zhang Xiang
Nanoscale Science and Engineering Center, University of California, Berkeley, California 94720, USA.
Department of Physics, University of California, Quantum Nanoelectronics Laboratory, Berkeley, California 94720, USA.
Phys Rev Lett. 2014 Oct 10;113(15):157001. doi: 10.1103/PhysRevLett.113.157001. Epub 2014 Oct 6.
We propose a technique to overcome phase mismatch in Josephson-junction traveling wave parametric amplifiers in order to achieve high gain over a broad bandwidth. Using "resonant phase matching," we design a compact superconducting device consisting of a transmission line with subwavelength resonant inclusions that simultaneously achieves a gain of 20 dB, an instantaneous bandwidth of 3 GHz, and a saturation power of -98 dBm. Such an amplifier is well suited to cryogenic broadband microwave measurements such as the multiplexed readout of quantum coherent circuits based on superconducting, semiconducting, or nanomechanical elements, as well as traditional astronomical detectors.
我们提出了一种克服约瑟夫森结行波参量放大器中相位失配的技术,以便在宽带宽上实现高增益。通过“共振相位匹配”,我们设计了一种紧凑的超导器件,该器件由带有亚波长共振内含物的传输线组成,能同时实现20 dB的增益、3 GHz的瞬时带宽以及-98 dBm的饱和功率。这种放大器非常适合低温宽带微波测量,例如基于超导、半导体或纳米机械元件的量子相干电路的多路复用读出,以及传统的天文探测器。