Barzanjeh S, Wulf M, Peruzzo M, Kalaee M, Dieterle P B, Painter O, Fink J M
Institute of Science and Technology Austria, 3400, Klosterneuburg, Austria.
Kavli Nanoscience Institute and Thomas J. Watson, Sr., Laboratory of Applied Physics, California Institute of Technology, Pasadena, CA, 91125, USA.
Nat Commun. 2017 Oct 16;8(1):953. doi: 10.1038/s41467-017-01304-x.
Nonreciprocal circuit elements form an integral part of modern measurement and communication systems. Mathematically they require breaking of time-reversal symmetry, typically achieved using magnetic materials and more recently using the quantum Hall effect, parametric permittivity modulation or Josephson nonlinearities. Here we demonstrate an on-chip magnetic-free circulator based on reservoir-engineered electromechanic interactions. Directional circulation is achieved with controlled phase-sensitive interference of six distinct electro-mechanical signal conversion paths. The presented circulator is compact, its silicon-on-insulator platform is compatible with both superconducting qubits and silicon photonics, and its noise performance is close to the quantum limit. With a high dynamic range, a tunable bandwidth of up to 30 MHz and an in situ reconfigurability as beam splitter or wavelength converter, it could pave the way for superconducting qubit processors with multiplexed on-chip signal processing and readout.Nonreciprocal optical elements often require magnetic materials in order to break time-reversal symmetry. Here, Barzanjeh et al. demonstrate a magnetic-free on-chip microwave circulator that utilizes the interference from six electro-mechanical signal paths.
非互易电路元件是现代测量和通信系统的重要组成部分。从数学角度来看,它们需要打破时间反演对称性,通常是通过使用磁性材料来实现,最近也可利用量子霍尔效应、参量介电常数调制或约瑟夫森非线性效应来达成。在此,我们展示了一种基于储能工程机电相互作用的片上无磁环行器。通过对六条不同机电信号转换路径进行可控的相位敏感干涉来实现定向循环。所展示的环行器结构紧凑,其绝缘体上硅平台与超导量子比特和硅光子学均兼容,并且其噪声性能接近量子极限。凭借高动态范围、高达30 MHz的可调带宽以及作为分束器或波长转换器的原位可重构性,它可为具有片上多路复用信号处理和读出功能的超导量子比特处理器铺平道路。非互易光学元件通常需要磁性材料来打破时间反演对称性。在此,巴尔赞杰等人展示了一种利用六条机电信号路径的干涉效应的片上无磁微波环行器。