Theory of Two-Photon Absorption with Broadband Squeezed Vacuum
arXiv:2202.01249 · doi:10.1103/PhysRevA.106.013717
Abstract
We present an analytical quantum theoretic model for non-resonant molecular two-photon absorption (TPA) of broadband, spectrally multi-mode squeezed vacuum, including low-gain (isolated entangled photon pairs or EPP) and high-gain (bright squeezed vacuum or BSV) regimes. The results are relevant to the potential use of entangled-light TPA as a spectroscopic and imaging method. We treat the scenario that the exciting light is spatially single-mode and is non-resonant with all intermediate molecular states. In the case of high gain, we find that in the case that the linewidth of the final molecular state is much narrower than the bandwidth of the exciting light, bright squeezed vacuum is found to be equally (but no more) effective in driving TPA as is a quasi-monochromatic coherent-state (classical) pulse of the same temporal shape, duration and mean photon number. Therefore, in this case the sought-for advantage of observing TPA at extremely low optical flux is not provided by broadband bright squeezed vacuum. In the opposite case that the final-state linewidth is much broader than the bandwidth of the BSV exciting light, we show that the TPA rate is proportional to the second-order intensity autocorrelation function at zero time delay g^(2)(0), as expected. We derive and evaluate formulas describing the transition between these two limiting cases, that is, including the regime where the molecular linewidth and optical bandwidth are comparable, as is often the case in experimental studies. We also show that for g^(2)(0) to reach the idealized form g^(2)(0) = 3 + 1/n, with n being the mean number of photons per temporal mode, it is required to compensate the dispersion inherent in the nonlinear-optical crystal used to generate the BSV.
submitted to PRA
References in corpus (6)
- Theory of Two-Photon Interactions with Broadband Down-Converted Light and Entangled Photons
- Multiphoton Effects Enhanced Due to Ultrafast Photon-Number Fluctuations
- Entangled Two-Photon Absorption by Atoms and Molecules: A Quantum Optics Tutorial
- Quantifying the enhancement of two-photon absorption due to spectral-temporal entanglement
- Bright squeezed vacuum for two-photon spectroscopy: simultaneously high resolution in time and frequency, space and wavevector
- Quantum Theory of Light in a Dispersive Structured Linear Dielectric: a Macroscopic Hamiltonian Tutorial Treatment
Cited by in corpus (7)
- Aspects of Two-photon Absorption of Squeezed Light: the CW limit
- Quantum-enhanced second harmonic generation beyond the photon pairs regime
- Enhancing entangled two-photon absorption of Nile Red via temperature-controlled SPDC
- Pump-intensity-scaling of Two-Photon-Absorption and Photon Statistics of Entangled-Photon Fields
- Scattering theory of frequency-entangled biphoton states facilitated by cavity polaritons
- Optimization of two-photon absorption for three-level atom
- Limitations of Entangled Two-Photon Absorption detection