Stochastic exciton-scattering theory of optical lineshapes: Renormalized
many-body contributions
- URL: http://arxiv.org/abs/2204.02820v5
- Date: Tue, 5 Jul 2022 15:46:51 GMT
- Title: Stochastic exciton-scattering theory of optical lineshapes: Renormalized
many-body contributions
- Authors: Hao Li and S. A. Shah and Eric R. Bittner and Andrei Piryatinski and
Carlos Silva
- Abstract summary: We build upon a model to account for non-stationary background processes produced by broad-band pulsed laser stimulation.
We consider the contribution of pair-fluctuations arising from the full bosonic many-body Hamiltonian within a mean-field approximation.
- Score: 5.787049285733455
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Spectral line-shapes provide a window into the local environment coupled to a
quantum transition in the condensed phase. In this paper, we build upon a
stochastic model to account for non-stationary background processes produced by
broad-band pulsed laser stimulation. In particular, we consider the
contribution of pair-fluctuations arising from the full bosonic many-body
Hamiltonian within a mean-field approximation, treating the coupling to the
system as a stochastic noise term. Using the It{\^o} transformation, we
consider two limiting cases for our model which lead to a connection between
the observed spectral fluctuations and the spectral density of the environment.
In the first case, we consider a Brownian environment and show that this
produces spectral dynamics that relax to form dressed excitonic states and
recover an Anderson-Kubo-like form for the spectral correlations. In the second
case, we assume that the spectrum is Anderson-Kubo like, and invert to
determine the corresponding background. Using the Jensen inequality, we obtain
an upper limit for the spectral density for the background. The results
presented here provide the technical tools for applying the stochastic model to
a broad range of problems.
Related papers
- A mixed perturbative-nonperturbative treatment for strong light-matter
interactions [0.0]
We present a Lindblad-like master equation for the emitter dynamics when coupled to a general nanophotonic structure.
We illustrate the power and validity of our approach through numerical simulations in three different setups.
arXiv Detail & Related papers (2023-12-23T18:54:31Z) - Waveguide QED in the Dipole Gauge [0.0]
We show that truncations performed in the dipole gauge also yield accurate results in waveguide QED.
Our findings reveal two novel effects in the scattering spectra, which cannot be reproduced in a truncated model using the Coulomb gauge.
We propose an experimental test of our ideas in the context of circuit QED.
arXiv Detail & Related papers (2023-09-12T18:14:20Z) - Solving and Completing the Rabi-Stark Model in the Ultrastrong Coupling
Regime [10.645443650115086]
We derive the analytical energy spectra in the ultrastrong coupling regime.
We observe a regular "staircase" pattern in the mean photon number of the ground state.
We analytically determine the phase boundary, which slightly differs from that in the original Rabi-Stark model.
arXiv Detail & Related papers (2023-08-16T03:01:19Z) - The Optical Signatures of Stochastic Processes in Many-Body Exciton
Scattering [5.090628201595126]
We show how direct (Coulomb) and exchange coupling to the bath give rise to distinct spectral signatures.
We discuss mathematical limits on inverting spectral signatures to extract the background density of states.
arXiv Detail & Related papers (2022-07-05T15:52:41Z) - Non-Gaussian superradiant transition via three-body ultrastrong coupling [62.997667081978825]
We introduce a class of quantum optical Hamiltonian characterized by three-body couplings.
We propose a circuit-QED scheme based on state-of-the-art technology that implements the considered model.
arXiv Detail & Related papers (2022-04-07T15:39:21Z) - Geometric phase in a dissipative Jaynes-Cummings model: theoretical
explanation for resonance robustness [68.8204255655161]
We compute the geometric phases acquired in both unitary and dissipative Jaynes-Cummings models.
In the dissipative model, the non-unitary effects arise from the outflow of photons through the cavity walls.
We show the geometric phase is robust, exhibiting a vanishing correction under a non-unitary evolution.
arXiv Detail & Related papers (2021-10-27T15:27:54Z) - Fano interference in quantum resonances from angle-resolved elastic
scattering [62.997667081978825]
We show that probing the angular dependence of the cross section allows us to unveil asymmetric Fano profiles in a single channel shape resonance.
We observe a shift in the peak of the resonance profile in the elastic collisions between metastable helium and deuterium molecules.
arXiv Detail & Related papers (2021-05-12T20:41:25Z) - Light-matter interactions near photonic Weyl points [68.8204255655161]
Weyl photons appear when two three-dimensional photonic bands with linear dispersion are degenerated at a single momentum point, labeled as Weyl point.
We analyze the dynamics of a single quantum emitter coupled to a Weyl photonic bath as a function of its detuning with respect to the Weyl point.
arXiv Detail & Related papers (2020-12-23T18:51:13Z) - Generalization of Second-Order Quasi-Phase Matching in Whispering
Gallery Mode Resonators Using Berry Phase [77.34726150561087]
Second order nonlinearities in whispering gallery mode resonators are investigated for their many applications.
We first detail the case of Zinc-blende materials and then generalize this theory to other crystal symmetries relevant for integrated photonics.
arXiv Detail & Related papers (2020-06-23T12:35:12Z) - Exploring 2D synthetic quantum Hall physics with a quasi-periodically
driven qubit [58.720142291102135]
Quasi-periodically driven quantum systems are predicted to exhibit quantized topological properties.
We experimentally study a synthetic quantum Hall effect with a two-tone drive.
arXiv Detail & Related papers (2020-04-07T15:00:41Z) - Semiclassical Approach to Photophysics Beyond Kasha's Rule and Vibronic
Spectroscopy Beyond the Condon Approximation. The Case of Azulene [0.0]
We study the photophysics and spectroscopy of azulene and other non-conventional molecules.
We develop a systematic, general, and efficient computational approach combining semiclassical dynamics of nuclei with ab initio electronic structure.
We find that accuracy of the evaluated spectra requires the treatment of anharmonicity, Herzberg--Teller, and mode-mixing effects.
arXiv Detail & Related papers (2020-01-23T09:08:29Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.