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Conditions for formation and trapping of the two-ion Coulomb cluster in the dissipative optical superlattice |
I. V. Krasnov |
Institute of Computational Modeling, Siberian Division, Russian Academy of Sciences, 660036 Krasnoyarsk, Russia |
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Abstract Conditions have been studied under which a polychromatic optical superlattice can form and trap the Coulomb cluster of two strongly interacting ions. In our previous work (Krasnov I V and Kamenshchikov L P 2014 Opt. Comm. 312 192) this new all-optical method of obtaining and confining the Coulomb clusters was demonstrated by numerical simulations for special values of the optical superlattice parameters and in the case of Yb ions. In the present paper the conditions are explicitly formulated, under which the long-lived two-ion cluster in the superlattice cell is formed. The peculiarity of these conditions is the renormalization of the ion–ion Coulomb interaction. Notably, the renormalized Coulomb force is determined by the effective charge which depends on the light field parameters and can strongly differ from the “bare” ion charge. This result can be accounted for by the combined manifestation of the quantum fluctuations of optical forces, nonlinear dependence of these forces on the velocity, and non-Maxwellian (Tsallis type) velocity distribution of the ions in the optical superlattice. Explicit analytical formulas are also obtained for the parameters of the optical two-ion cluster.
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Received: 24 November 2014
Revised: 08 January 2015
Accepted manuscript online:
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PACS:
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37.10.Vz
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(Mechanical effects of light on atoms, molecules, and ions)
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37.10.Ty
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(Ion trapping)
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37.10.Rs
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(Ion cooling)
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Corresponding Authors:
I. V. Krasnov
E-mail: krasn@icm.krasn.ru
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About author: 37.10.Vz; 37.10.Ty; 37.10.Rs |
Cite this article:
I. V. Krasnov Conditions for formation and trapping of the two-ion Coulomb cluster in the dissipative optical superlattice 2015 Chin. Phys. B 24 063701
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[1] |
Kazantsev A P, Surdutovich G I and Yakovlev V P 1990 Mechanical Effect of Light on Atoms (Singapore: World Scientific)
|
[2] |
Metcalf H J and van der Straten P 2002 Laser Cooling and Trapping (New York: Springer)
|
[3] |
Schneider C, Enderlein M, Huber T and Schaetz T 2010 Nat. Photon. 4 772
|
[4] |
Krasnov I V and Kamenshchikov L P 2014 Opt. Commun. 312 192
|
[5] |
Grynberg G and Robiliard C 2001 Phys. Rep. 355 335
|
[6] |
Zhou M, Chen N, Zhang X H, Huang L Y, Yao M F, Tian J, Gao Q, Jiang H L, Tang H Y and Xu X Y 2013 Chin. Phys. B 22 103701
|
[7] |
Lu J F, Zhou Q, Pan X Q and Yin J P 2013 Acta Phys. Sin. 62 233701 (in Chinese)
|
[8] |
Krasnov I V 2009 Phys. Lett. A 373 2291
|
[9] |
Krasnov I V 2011 Phys. Lett. A 375 2471
|
[10] |
Kazantsev A P and Krasnov I V 1989 J. Opt. Soc. Am. B6 2140
|
[11] |
Grimm R, Ovchinnikov Y B, Sidorov A I and Letochov V S 1990 Phys. Rev. Lett. 65 1415
|
[12] |
Krasnov I V 2004 JETP 98 888
|
[13] |
Kazantsev A P 1978 Sov. Phys. Usp. 21 58
|
[14] |
Krasnov I V 1994 Laser Physics 4 906
|
[15] |
Lutz E and Renzoni F 2013 Nat. Phys. 9 615
|
[16] |
Cook R G 1980 Phys. Rev. A 21 268
|
[17] |
Stenholm S 1986 Rev. Mod. Phys. 58 699
|
[18] |
Minogin V G and Letochov V S 1987 Laser Light Pressure on Atoms (New York: Gordon and Breach)
|
[19] |
Gardiner C W 2004 Handbook of Stochastic Methods for Physics, Chemistry and the Natural Sciences, 3rd edn. (Springer Series in Synergetics, Vol. 13) (Berlin: Springer-Verlag) ISBN 3-540-20882-8
|
[20] |
Murphy T J and Aguirre J L 1972 J. Chem. Phys. 57 2098
|
[21] |
Bocquet L 1997 Am. J. Phys. 65 140
|
[22] |
van Kampen N G 1984 Stochastic Processes in Physics and Chemistry (Amsterdam: North-Holland Physics Publishing)
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