REVIEW. Quantum optics with ultracold quantum gases: towards the full quantum regime of the light-matter interaction

Although the study of ultracold quantum gases trapped by light is a prominent direction of modern research, the quantum properties of light were widely neglected in this field. Quantum optics with quantum gases closes this gap and addresses phenomena, where the quantum statistical nature of both lig...

Full description

Bibliographic Details
Main Authors: Mekhov, I, Ritsch, H
Format: Journal article
Published: 2012
_version_ 1826298000440295424
author Mekhov, I
Ritsch, H
author_facet Mekhov, I
Ritsch, H
author_sort Mekhov, I
collection OXFORD
description Although the study of ultracold quantum gases trapped by light is a prominent direction of modern research, the quantum properties of light were widely neglected in this field. Quantum optics with quantum gases closes this gap and addresses phenomena, where the quantum statistical nature of both light and ultracold matter play equally important roles. First, light can serve as a quantum nondemolition (QND) probe of the quantum dynamics of various ultracold particles from ultracold atomic and molecular gases to nanoparticles and nanomechanical systems. Second, due to dynamic light-matter entanglement, projective measurement-based preparation of the many-body states is possible, where the class of emerging atomic states can be designed via optical geometry. Light scattering constitutes such a quantum measurement with controllable measurement back-action. As in cavity-based spin squeezing, atom number squeezed and Schroedinger cat states can be prepared. Third, trapping atoms inside an optical cavity one creates optical potentials and forces, which are not prescribed but quantized and dynamical variables themselves. Ultimately, cavity QED with quantum gases requires a self-consistent solution for light and particles, which enriches the picture of quantum many-body states of atoms trapped in quantum potentials. This will allow quantum simulations of phenomena related to the physics of phonons, polarons, polaritons and other quantum quasiparticles.
first_indexed 2024-03-07T04:40:09Z
format Journal article
id oxford-uuid:d156f65d-6223-4c3a-af97-3915457a0448
institution University of Oxford
last_indexed 2024-03-07T04:40:09Z
publishDate 2012
record_format dspace
spelling oxford-uuid:d156f65d-6223-4c3a-af97-3915457a04482022-03-27T07:56:18ZREVIEW. Quantum optics with ultracold quantum gases: towards the full quantum regime of the light-matter interactionJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:d156f65d-6223-4c3a-af97-3915457a0448Symplectic Elements at Oxford2012Mekhov, IRitsch, HAlthough the study of ultracold quantum gases trapped by light is a prominent direction of modern research, the quantum properties of light were widely neglected in this field. Quantum optics with quantum gases closes this gap and addresses phenomena, where the quantum statistical nature of both light and ultracold matter play equally important roles. First, light can serve as a quantum nondemolition (QND) probe of the quantum dynamics of various ultracold particles from ultracold atomic and molecular gases to nanoparticles and nanomechanical systems. Second, due to dynamic light-matter entanglement, projective measurement-based preparation of the many-body states is possible, where the class of emerging atomic states can be designed via optical geometry. Light scattering constitutes such a quantum measurement with controllable measurement back-action. As in cavity-based spin squeezing, atom number squeezed and Schroedinger cat states can be prepared. Third, trapping atoms inside an optical cavity one creates optical potentials and forces, which are not prescribed but quantized and dynamical variables themselves. Ultimately, cavity QED with quantum gases requires a self-consistent solution for light and particles, which enriches the picture of quantum many-body states of atoms trapped in quantum potentials. This will allow quantum simulations of phenomena related to the physics of phonons, polarons, polaritons and other quantum quasiparticles.
spellingShingle Mekhov, I
Ritsch, H
REVIEW. Quantum optics with ultracold quantum gases: towards the full quantum regime of the light-matter interaction
title REVIEW. Quantum optics with ultracold quantum gases: towards the full quantum regime of the light-matter interaction
title_full REVIEW. Quantum optics with ultracold quantum gases: towards the full quantum regime of the light-matter interaction
title_fullStr REVIEW. Quantum optics with ultracold quantum gases: towards the full quantum regime of the light-matter interaction
title_full_unstemmed REVIEW. Quantum optics with ultracold quantum gases: towards the full quantum regime of the light-matter interaction
title_short REVIEW. Quantum optics with ultracold quantum gases: towards the full quantum regime of the light-matter interaction
title_sort review quantum optics with ultracold quantum gases towards the full quantum regime of the light matter interaction
work_keys_str_mv AT mekhovi reviewquantumopticswithultracoldquantumgasestowardsthefullquantumregimeofthelightmatterinteraction
AT ritschh reviewquantumopticswithultracoldquantumgasestowardsthefullquantumregimeofthelightmatterinteraction