Quantum Non-Demolition Detection of Polar Molecule Complexes: Dimers, Trimers, Tetramers
arXiv:1111.3908 · doi:10.1088/1054-660X/23/1/015501
Abstract
The optical nondestructive method for in situ detection of the bound states of ultracold polar molecules is developed. It promises a minimally destructive measurement scheme up to a physically exciting quantum non-demolition (QND) level. The detection of molecular complexes beyond simple pairs of quantum particles (dimers, known, e.g., from the BEC-BCS theory) is suggested, including three-body (trimers) and four-body (tertramers) complexes trapped by one-dimensional tubes. The intensity of scattered light is sensitive to the molecule number fluctuations beyond the mean-density approximation. Such fluctuations are very different for various complexes, which leads to radically different light scattering. This type of research extends "quantum optics of quantum gases" to the field of ultracold molecules. Merging the quantum optical and ultracold gas problems will advance the experimental efforts towards the study of the light-matter interaction at its ultimate quantum level, where the quantizations of both light and matter are equally important.
6 pages, 2 figures
References in corpus (16)
- Strong atom-field coupling for Bose-Einstein condensates in an optical cavity on a chip
- Cavity QED with a Bose-Einstein condensate
- Ultracold atoms in optical lattices generated by quantized light fields
- Probing quantum phases of ultracold atoms in optical lattices by transmission spectra in cavity QED
- Correlations and Pair Formation in a Repulsively Interacting Fermi Gas
- Cavity enhanced light scattering in optical lattices to probe atomic quantum statistics
- Speckle Imaging of Spin Fluctuations in a Strongly Interacting Fermi Gas
- Dynamical Coupling between a Bose-Einstein Condensate and a Cavity Optical Lattice
- QND measurements and state preparation in quantum gases by light detection
- Coherent light scattering from a two-dimensional Mott insulator
- Bragg Scattering as a Probe of Atomic Wavefunctions and Quantum Phase Transitions in Optical Lattices
- Light scattering from ultracold atoms in optical lattices as an optical probe of quantum statistics
- Probing spatial spin correlations of ultracold gases by quantum noise spectroscopy
- Quantum optics with quantum gases: controlled state reduction by designed light scattering
- Few-Body Bound Complexes in One-dimensional Dipolar Gases and Non-Destructive Optical Detection
- Quantum Optics with Quantum Gases
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- Quantum properties of light scattered from structured many-body phases of ultracold atoms in quantum optical lattices
- Engineering Many-Body Dynamics with Quantum Light Potentials and Measurements
- Bond Order via Light-Induced Synthetic Many-body Interactions of Ultracold Atoms in Optical Lattices
- Quantum measurement-induced antiferromagnetic order and density modulations in ultracold Fermi gases in optical lattices
- Collective dynamics of multimode bosonic systems induced by weak quantum measurement
- Probing and Manipulating Fermionic and Bosonic Quantum Gases with Quantum Light
- Tuning the universality class of phase transitions by feedback: Open quantum systems beyond dissipation
- Cavityless self-organization of ultracold atoms due to the feedback-induced phase transition
- Quantum State Reduction by Matter-Phase-Related Measurements in Optical Lattices