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- W2897525894 endingPage "105007" @default.
- W2897525894 startingPage "105007" @default.
- W2897525894 abstract "We develop a theoretical framework to describe the scattering of photons against a two-level quantum emitter with arbitrary correlated dephasing noise. This is particularly relevant to waveguide-QED setups with solid-state emitters, such as superconducting qubits or quantum dots, which couple to complex dephasing environments in addition to the propagating photons along the waveguide. Combining input-output theory and stochastic methods, we predict the effect of correlated dephasing in single-photon transmission experiments with weak coherent inputs. We discuss homodyne detection and photon counting of the scattered photons and show that both measurements give the modulus and phase of the single-photon transmittance despite the presence of noise and dissipation. In addition, we demonstrate that these spectroscopic measurements contain the same information as standard time-resolved Ramsey interferometry, and thus they can be used to fully characterize the noise correlations without direct access to the emitter. The method is exemplified with paradigmatic correlated dephasing models such as colored Gaussian noise, white noise, telegraph noise, and 1/f-noise, as typically encountered in solid-state environments." @default.
- W2897525894 created "2018-10-26" @default.
- W2897525894 creator A5015592691 @default.
- W2897525894 creator A5058510638 @default.
- W2897525894 date "2018-10-26" @default.
- W2897525894 modified "2023-10-08" @default.
- W2897525894 title "Correlated dephasing noise in single-photon scattering" @default.
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- W2897525894 doi "https://doi.org/10.1088/1367-2630/aae73b" @default.
- W2897525894 hasPublicationYear "2018" @default.
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