Dimensional Reduction in Quantum Optics
arXiv:2312.06764 · doi:10.1103/PhysRevResearch.6.013285
Abstract
One-dimensional quantum optical models usually rest on the intuition of large scale separation or frozen dynamics associated with the different spatial dimensions, for example when studying quasi one-dimensional atomic dynamics, potentially resulting in the violation of Maxwell's theory. Here, we provide a rigorous foundation for this approximation by means of the light-matter interaction. We show how the quantized electromagnetic field can be decomposed exactly into an infinite number of subfields living on a lower dimensional subspace and containing the entirety of the spectrum when studying axially symmetric setups, such as with an optical fiber, a laser beam or a waveguide. The dimensional reduction approximation then corresponds to a truncation in the number of such subfields that in turn, when considering the interaction with for instance an atom, corresponds to a modification to the atomic spatial profile. We explore under what conditions the standard approach is justified and when corrections are necessary in order to account for the dynamics due to the neglected spatial dimensions. In particular we will examine what role vacuum fluctuations and structured laser modes play in the validity of the approximation.
V2: updated to match published version, 35 pages (14 pages of appendix), 8 figures, RevTex 4.2
References in corpus (24)
- Quantum nature of a strongly-coupled single quantum dot-cavity system
- Quantum information processing with circuit quantum electrodynamics
- Cavity Opto-Mechanics with a Bose-Einstein Condensate
- Dressed Collective Qubit States and the Tavis-Cummings Model in Circuit QED
- Rotating optical cavity experiment testing Lorentz invariance at the 10^{-17} level
- Atom detection and photon production in a scalable, open, optical microcavity
- Atom interferometry in an optical cavity
- Thermalization and breakdown of thermalization in photon condensates
- The Rotating-Wave Approximation: Consistency and Applicability from an Open Quantum System Analysis
- Information transmission without energy exchange
- The Super-Strong Coupling Regime of Cavity Quantum Electrodynamics
- Violation of the strong Huygen's principle and timelike signals from the early Universe
- Feedback cooling of atomic motion in cavity QED
- Low-dimensional quantum gases in curved geometries
- On Coherent Delocalization in the Light-Matter Interaction
- Light-matter interaction at the transition between cavity and waveguide QED
- Engineering Bright Matter-Wave Solitons of Dipolar Condensates
- 3D scalar model as a 4D perfect conductor limit: dimensional reduction and variational boundary conditions
- Finite sizes and smooth cutoffs in superconducting circuits
- Multi-mode effects in cavity QED based on a one-dimensional cavity array
- Raman transitions driven by phase-modulated light in a cavity atom interferometer
- Dimensional reduction of the Dirac theory
- Quantum state transfer and input-output theory with time reversal
- The Wave Functional of the Vacuum in a Resonator