Two-photon optical shielding of collisions between ultracold polar molecules

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autoren

  • Charbel Karam
  • Romain Vexiau
  • Nadia Bouloufa-Maafa
  • Olivier Dulieu
  • Maxence Lepers
  • Mara Meyer Zum Alten Borgloh
  • Silke Ospelkaus
  • Leon Karpa

Externe Organisationen

  • Universität Paris-Saclay
  • Interdisziplinäres Laboratorium Carnot de Bourgogne (ICB)
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Details

OriginalspracheEnglisch
Aufsatznummer033074
FachzeitschriftPhysical Review Research
Jahrgang5
Ausgabenummer3
PublikationsstatusVeröffentlicht - 3 Aug. 2023

Abstract

We propose a method to engineer repulsive long-range interactions between ultracold ground-state molecules using optical fields, thus preventing short-range collisional losses. It maps the microwave coupling recently used for collisional shielding onto a two-photon transition and takes advantage of optical control techniques. In contrast to one-photon optical shielding [Xie, Phys. Rev. Lett. 125, 153202 (2020)0031-900710.1103/PhysRevLett.125.153202], this scheme avoids heating of the molecular gas due to photon scattering. The proposed protocol, exemplified for Na23K39, should be applicable to a large class of polar diatomic molecules.

ASJC Scopus Sachgebiete

Zitieren

Two-photon optical shielding of collisions between ultracold polar molecules. / Karam, Charbel; Vexiau, Romain; Bouloufa-Maafa, Nadia et al.
in: Physical Review Research, Jahrgang 5, Nr. 3, 033074, 03.08.2023.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Karam, C, Vexiau, R, Bouloufa-Maafa, N, Dulieu, O, Lepers, M, Meyer Zum Alten Borgloh, M, Ospelkaus, S & Karpa, L 2023, 'Two-photon optical shielding of collisions between ultracold polar molecules', Physical Review Research, Jg. 5, Nr. 3, 033074. https://doi.org/10.1103/PhysRevResearch.5.033074
Karam, C., Vexiau, R., Bouloufa-Maafa, N., Dulieu, O., Lepers, M., Meyer Zum Alten Borgloh, M., Ospelkaus, S., & Karpa, L. (2023). Two-photon optical shielding of collisions between ultracold polar molecules. Physical Review Research, 5(3), Artikel 033074. https://doi.org/10.1103/PhysRevResearch.5.033074
Karam C, Vexiau R, Bouloufa-Maafa N, Dulieu O, Lepers M, Meyer Zum Alten Borgloh M et al. Two-photon optical shielding of collisions between ultracold polar molecules. Physical Review Research. 2023 Aug 3;5(3):033074. doi: 10.1103/PhysRevResearch.5.033074
Karam, Charbel ; Vexiau, Romain ; Bouloufa-Maafa, Nadia et al. / Two-photon optical shielding of collisions between ultracold polar molecules. in: Physical Review Research. 2023 ; Jahrgang 5, Nr. 3.
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abstract = "We propose a method to engineer repulsive long-range interactions between ultracold ground-state molecules using optical fields, thus preventing short-range collisional losses. It maps the microwave coupling recently used for collisional shielding onto a two-photon transition and takes advantage of optical control techniques. In contrast to one-photon optical shielding [Xie, Phys. Rev. Lett. 125, 153202 (2020)0031-900710.1103/PhysRevLett.125.153202], this scheme avoids heating of the molecular gas due to photon scattering. The proposed protocol, exemplified for Na23K39, should be applicable to a large class of polar diatomic molecules.",
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note = "Funding Information: C.K. acknowledges the support of the Quantum Institute of Universit{\'e} Paris-Saclay. M.M., S.O., and L.K. thank the DFG (German Research Foundation) for support through CRC 1227 DQ-mat and Germany's Excellence Strategy—EXC-2123 QuantumFrontiers—No. 390837967. This work is supported in part by the ERC Consolidator Grant 101045075- TRITRAMO, and by the joint ANR/DFG project OpEnMInt (ANR-22-CE92-0069-01). Stimulating discussions with Prof. Eberhard Tiemann (IQO, Leibniz University, Hannover) and with Dr Patrick Cheinet (LAC, CNRS, Universit{\'e} Paris-Saclay, France) are gratefully acknowledged.",
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AU - Karam, Charbel

AU - Vexiau, Romain

AU - Bouloufa-Maafa, Nadia

AU - Dulieu, Olivier

AU - Lepers, Maxence

AU - Meyer Zum Alten Borgloh, Mara

AU - Ospelkaus, Silke

AU - Karpa, Leon

N1 - Funding Information: C.K. acknowledges the support of the Quantum Institute of Université Paris-Saclay. M.M., S.O., and L.K. thank the DFG (German Research Foundation) for support through CRC 1227 DQ-mat and Germany's Excellence Strategy—EXC-2123 QuantumFrontiers—No. 390837967. This work is supported in part by the ERC Consolidator Grant 101045075- TRITRAMO, and by the joint ANR/DFG project OpEnMInt (ANR-22-CE92-0069-01). Stimulating discussions with Prof. Eberhard Tiemann (IQO, Leibniz University, Hannover) and with Dr Patrick Cheinet (LAC, CNRS, Université Paris-Saclay, France) are gratefully acknowledged.

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Y1 - 2023/8/3

N2 - We propose a method to engineer repulsive long-range interactions between ultracold ground-state molecules using optical fields, thus preventing short-range collisional losses. It maps the microwave coupling recently used for collisional shielding onto a two-photon transition and takes advantage of optical control techniques. In contrast to one-photon optical shielding [Xie, Phys. Rev. Lett. 125, 153202 (2020)0031-900710.1103/PhysRevLett.125.153202], this scheme avoids heating of the molecular gas due to photon scattering. The proposed protocol, exemplified for Na23K39, should be applicable to a large class of polar diatomic molecules.

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