Observation of Kapitza–Dirac Diffraction in Atomic Lithium Gas Using Bragg’s Scattering

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Resumo

A short-lived density grating is produced in a gas of lithium atoms. The gas is preliminarily cooled in a magnetooptical trap. The grating is formed due to diffraction of atoms on a standing light wave. The grating is observed from Bragg’s scattering of light from it. This method of formation and observation over the grating can be used in a lithium-based atomic interferometer.

Sobre autores

V. Baturo

Institute of Applied Physics, Russian Academy of Sciences;Russian Quantum Center

Email: turlapov@appl.sci-nnov.ru
Nizhny Novgorod, 603950 Russia; Skolkovo, Moscow, 121205 Russia

V. Vinogradov

Institute of Applied Physics, Russian Academy of Sciences;Russian Quantum Center;Moscow Institute of Physics and Technology

Email: turlapov@appl.sci-nnov.ru
Nizhny Novgorod, 603950 Russia;Skolkovo, Moscow, 121205 Russia;Dolgoprudny, Moscow oblast, 141701 Russia

M. Platonova

Institute of Applied Physics, Russian Academy of Sciences;Russian Quantum Center;Lobachevsky State University

Email: turlapov@appl.sci-nnov.ru
Nizhny Novgorod, 603950 Russia;Skolkovo, Moscow, 121205 Russia;Nizhny Novgorod, 603022 Russia

I. Yukhnovets

Russian Quantum Center

Email: turlapov@appl.sci-nnov.ru
Skolkovo, Moscow, 121205 Russia

A. Turlapov

Institute of Applied Physics, Russian Academy of Sciences;Russian Quantum Center;Moscow Institute of Physics and Technology

Autor responsável pela correspondência
Email: turlapov@appl.sci-nnov.ru
Nizhny Novgorod, 603950 Russia;Skolkovo, Moscow, 121205 Russia;Dolgoprudny, Moscow oblast, 141701 Russia

Bibliografia

  1. P. L. Kapitza and P. A. M. Dirac, Math. Proceed. of the Cambridge Phil. Soc. 29, 297 (1933).
  2. S. Altshuler, L. M. Frantz, and R. Braunstein, Phys. Rev. Lett. 17, 231 (1966).
  3. А. П. Казанцев, Г. И. Сурдутович, Письма в ЖЭТФ 21, 346 (1975).
  4. D. S. Weiss, B. C. Young, and S. Chu, Phys. Rev. Lett. 70, 2706 (1993).
  5. В. А. Гринчук, А. П. Казанцев, Е. Ф. Кузин и др., Письма в ЖЭТФ 34, 395 (1981).
  6. S. B. Cahn, A. Kumarakrishnan, U. Shim et al., Phys. Rev. Lett. 79, 784 (1997).
  7. A. D. Cronin, J. Schmiedmayer, D. E. Pritchard, Rev. Mod. Phys. 81, 1051 (2009).
  8. R. Charri'ere, M. Cadoret, N. Zahzam et al., Phys. Rev. A 85 013639 (2012).
  9. V. Xu, M. Ja e, C. D. Panda et al., Science 366, 745 (2019).
  10. А. П. Казанцев, Г. И. Сурдутович, В. П. Яковлев, Письма в ЖЭТФ 31, 542 (1980).
  11. Б. Я. Дубецкий, А. П. Казанцев, В. П. Чеботаев и др., Письма в ЖЭТФ 39, 531 (1984).
  12. В. Б. Махалов, А. В. Турлапов, Письма в ЖЭТФ 109, 564 (2019).
  13. В. А. Виноградов, К. А. Карпов, А. В. Турлапов, КЭ 51, 490 (2021).

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