Quantum noise properties of multiphoton transitions in driven nonlinear resonators
V. Leyton, V. Peano, and M. Thorwart

TL;DR
This paper explores the quantum noise characteristics of a driven nonlinear resonator in the deep quantum regime, revealing how multiphoton resonances influence noise spectra and state populations, with implications for quantum state detection.
Contribution
It provides analytical expressions for noise spectra in multiphoton resonances and links quantum fluctuations to quasienergy state populations in nonlinear resonators.
Findings
Multiphoton resonances produce multiple peaks in the noise spectrum.
Quantum fluctuations reveal populations of multiphoton states.
Finite detuning introduces a zero-frequency quasielastic noise peak.
Abstract
We investigate the quantum noise properties of a weakly nonlinear Duffing resonator in the deep quantum regime, where only few quanta are excited. This regime is dominated by the appearance of coherent multiphoton resonances in the nonlinear response of the resonator to the modulation. We determine simple expressions for the photon noise spectrum and find that the multiphoton resonances also induces a multiple peak structure in that noise. When the corresponding multiphoton Rabi oscillations are underdamped, zero temperature quantum fluctuations determine comparable populations of all quasienergy states which belong to a resonant multiphoton doublet. Most interestingly, the quantum fluctuations probe the multiphoton transitions by inducing several peaks in the noise spectrum of the resonator observables. In particular, the noise of the photon number contains complete information about…
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