Photodetection of propagating quantum microwaves in circuit QED
arXiv:0906.4362 · doi:10.1088/0031-8949/2009/T137/014004
Abstract
We develop the theory of a metamaterial composed of an array of discrete quantum absorbers inside a one-dimensional waveguide that implements a high-efficiency microwave photon detector. A basic design consists of a few metastable superconducting nanocircuits spread inside and coupled to a one-dimensional waveguide in a circuit QED setup. The arrival of a {\it propagating} quantum microwave field induces an irreversible change in the population of the internal levels of the absorbers, due to a selective absorption of photon excitations. This design is studied using a formal but simple quantum field theory, which allows us to evaluate the single-photon absorption efficiency for one and many absorber setups. As an example, we consider a particular design that combines a coplanar coaxial waveguide with superconducting phase qubits, a natural but not exclusive playground for experimental implementations. This work and a possible experimental realization may stimulate the possible arrival of "all-optical" quantum information processing with propagating quantum microwaves, where a microwave photodetector could play a key role.
27 pages, submitted to Physica Scripta for Nobel Symposium on "Qubits for Quantum Information", 2009
References in corpus (11)
- Coupling Superconducting Qubits via a Cavity Bus
- Superconducting Circuits and Quantum Information
- Resolving photon number states in a superconducting circuit
- Controllable scattering of photons inside a one-dimensional resonator waveguide
- Climbing the Jaynes-Cummings Ladder and Observing its Sqrt(n) Nonlinearity in a Cavity QED System
- Generating Single Microwave Photons in a Circuit
- Nonlinear response of the vacuum Rabi resonance
- Two-photon probe of the Jaynes-Cummings model and symmetry breaking in circuit QED
- Two-resonator circuit QED: A superconducting quantum switch
- Microwave Photon Detector in Circuit QED
- Two-dimensional cavity grid for scalable quantum computation with superconducting circuits
Cited by in corpus (27)
- Microwave photonics with superconducting quantum circuits
- Input-output theory for waveguide QED with an ensemble of inhomogeneous atoms
- Microwave Photon Counter Based on Josephson Junctions
- Switchable ultrastrong coupling in circuit QED
- Implementation of a Quantum Metamaterial
- Perfect Microwave Photodetection in Circuit QED
- Dual-path state reconstruction scheme for propagating quantum microwaves and detector noise tomography
- Breakdown of the cross-Kerr scheme for Photon Counting
- Non-absorbing high-efficiency counter for itinerant microwave photons
- Propagating Quantum Microwaves: Towards Applications in Communication and Sensing
- Single-photon scattering on a strongly dressed atom
- Theory of Josephson Photomultipliers: Optimal Working Conditions and Back Action
- Detecting itinerant single microwave photons
- Deterministic creation and stabilization of entanglement in circuit QED by homodyne-mediated feedback control
- Photon-mediated qubit interactions in 1D discrete and continous models
- Measuring microwave quantum states: tomogram and moments
- Challenges in Open-air Microwave Quantum Communication and Sensing
- Nondestructive photon counting in waveguide QED
- Electromagnetic radiation detectors based on Josephson junctions: Effective Hamiltonian
- Counting statistics of microwave photons in circuit QED
- Mesoscopic Shelving Readout of Superconducting Qubits in Circuit QED
- Fluorescence interferometry
- Photon-number resolution with microwave Josephson photomultipliers
- Short-time quantum detection: probing quantum fluctuations
- CQED quantum tomography of a microwave range
- Influence of qubits' nonradiative decay into a common bath on the transport properties of microwave photons
- Bipartite entanglement of localized separated systems