Nonreciprocal devices such as isolators and circulators are necessary to protect sensitive apparatus from unwanted noise. Recently, a variety of alternatives were proposed to replace ferrite-based commercial technologies, with the motivation to be integrated with microwave superconducting quantum circuits. Here, we review isolators realized with microwave optomechanical circuits and present a gyrator-based picture to develop an intuition on the origin of nonreciprocity in these systems. Such nonreciprocal optomechanical schemes show promise as they can be extended to circulators and directional amplifiers, with perspectives to reach the quantum limit in terms of noise
Nonreciprocal devices are indispensable for providing highly desirable functionalities for optical c...
International audienceWe explore the nonlinear dynamics of a cavity optomechanical system. Our reali...
In this thesis, I present recent studies of cavity optomechanical physics using superconducting circ...
Nonreciprocal devices, such as isolators, are required to protect sensitive superconducting quantum ...
Nonreciprocal microwave devices are ubiquitous in radar and radio communication and indispensable in...
Directional amplifiers are an important resource in quantum information processing, as they protect ...
Directional amplifiers are an important resource in quantum-information processing, as they protect ...
Directional amplifiers are an important resource in quantum-information processing, as they protect ...
| openaire: EC/H2020/732894/EU//HOT | openaire: EC/H2020/742102/EU//QUENOCOBADirectional transport i...
Nonreciprocal devices such as circulators and isolators belong to an impor-tant class of microwave c...
| openaire: EC/FP7/615755/EU//CAVITYQPD | openaire: EC/H2020/732894/EU//HOTDirectional transmission ...
We discuss a general method for constructing nonreciprocal, cavity-based photonic devices, based on ...
A nonlocal circulator protocol is proposed in hybrid optomechanical system. By analogy with quantum ...
High-gain and low-noise signal amplification is a valuable tool in various cryogenic microwave exper...
High-gain and low-noise signal amplication is a valuable tool in various cryogenic microwave experim...
Nonreciprocal devices are indispensable for providing highly desirable functionalities for optical c...
International audienceWe explore the nonlinear dynamics of a cavity optomechanical system. Our reali...
In this thesis, I present recent studies of cavity optomechanical physics using superconducting circ...
Nonreciprocal devices, such as isolators, are required to protect sensitive superconducting quantum ...
Nonreciprocal microwave devices are ubiquitous in radar and radio communication and indispensable in...
Directional amplifiers are an important resource in quantum information processing, as they protect ...
Directional amplifiers are an important resource in quantum-information processing, as they protect ...
Directional amplifiers are an important resource in quantum-information processing, as they protect ...
| openaire: EC/H2020/732894/EU//HOT | openaire: EC/H2020/742102/EU//QUENOCOBADirectional transport i...
Nonreciprocal devices such as circulators and isolators belong to an impor-tant class of microwave c...
| openaire: EC/FP7/615755/EU//CAVITYQPD | openaire: EC/H2020/732894/EU//HOTDirectional transmission ...
We discuss a general method for constructing nonreciprocal, cavity-based photonic devices, based on ...
A nonlocal circulator protocol is proposed in hybrid optomechanical system. By analogy with quantum ...
High-gain and low-noise signal amplification is a valuable tool in various cryogenic microwave exper...
High-gain and low-noise signal amplication is a valuable tool in various cryogenic microwave experim...
Nonreciprocal devices are indispensable for providing highly desirable functionalities for optical c...
International audienceWe explore the nonlinear dynamics of a cavity optomechanical system. Our reali...
In this thesis, I present recent studies of cavity optomechanical physics using superconducting circ...