Simulation of matter wave scattering on the column of force centers in the semiclassical limit
Matematičeskoe modelirovanie, Tome 23 (2011) no. 12, pp. 20-32.

Voir la notice de l'article provenant de la source Math-Net.Ru

The new trajectory algorithm for quantum dynamic simulation in the semiclassical limit is introduced. The algorithm is based on the calculation of unique characteristic (“index”) of any given trajectory of correspondent classical problem. This index represents summary information about the critical points which are visited when particle moves along classical trajectory. The diffraction picture is obtained during simulation of quantum diffraction on the flat screen when narrow beam of particles is propagated along the line of force centers with attractive potentials of Gaussian type. It has been shown that there is possibility for focusing of such beams at large distances from the initial scattering center. The explanation of such focusing has been given. This explanation is based on the analysis of quantum dynamics of wave packets in the field of gauss-type potential.
Keywords: quantum dynamics, matter wave scattering, multiple scattering centers, numerical simulation, trajectory algorithms, critical points.
Mots-clés : diffraction
@article{MM_2011_23_12_a1,
     author = {K. S. Arakelov},
     title = {Simulation of matter wave scattering on the column of force centers in the semiclassical limit},
     journal = {Matemati\v{c}eskoe modelirovanie},
     pages = {20--32},
     publisher = {mathdoc},
     volume = {23},
     number = {12},
     year = {2011},
     language = {ru},
     url = {http://geodesic.mathdoc.fr/item/MM_2011_23_12_a1/}
}
TY  - JOUR
AU  - K. S. Arakelov
TI  - Simulation of matter wave scattering on the column of force centers in the semiclassical limit
JO  - Matematičeskoe modelirovanie
PY  - 2011
SP  - 20
EP  - 32
VL  - 23
IS  - 12
PB  - mathdoc
UR  - http://geodesic.mathdoc.fr/item/MM_2011_23_12_a1/
LA  - ru
ID  - MM_2011_23_12_a1
ER  - 
%0 Journal Article
%A K. S. Arakelov
%T Simulation of matter wave scattering on the column of force centers in the semiclassical limit
%J Matematičeskoe modelirovanie
%D 2011
%P 20-32
%V 23
%N 12
%I mathdoc
%U http://geodesic.mathdoc.fr/item/MM_2011_23_12_a1/
%G ru
%F MM_2011_23_12_a1
K. S. Arakelov. Simulation of matter wave scattering on the column of force centers in the semiclassical limit. Matematičeskoe modelirovanie, Tome 23 (2011) no. 12, pp. 20-32. http://geodesic.mathdoc.fr/item/MM_2011_23_12_a1/

[1] J. Y. Vaishnav, A. Itsara, E. J. Heller, “Hall of Mirrors Scattering from an Impurity in a Quantum Wire”, Physical Review B, 73 (2006), 115331 | DOI

[2] J. Y. Vaishnav, J. D. Walls, M. Apratim, E. J. Heller, “Matter Wave Scattering and Guiding by Atomic Arrays ]”, Physical Review A, 76 (2007), 013620 | DOI

[3] V. V. Klimov, V. S. Letokhov, “Tochnoe reshenie zadachi o lazernoi fokusirovke atomnogo puchka”, Pisma v ZhETF, 70 (1999), 654–659

[4] K. S. Arakelov, “Modelirovanie kvantovoi dinamiki volnovogo paketa v kvaziklassicheskom priblizhenii”, Matematicheskoe modelirovanie, 23:2 (2011), 41–52 | MR

[5] K. S. Arakelov, “Modelirovanie kvantovogo uprugogo rasseyaniya pri atomnykh stolknoveniyakh v kvaziklassicheskom priblizhenii s uchetom interferentsionnykh effektov”, Mikroelektronika, 38:5 (2009), 331–343

[6] W. H. Miller, “The Semiclassical Initial Value Representation: A Potentially Practical Way for Adding Quantum Effects to Classical Molecular Dynamics Simulations”, Journal of Physical Chemistry A, 105 (2001), 2942–2955 | DOI

[7] M. C. Gutzwiller, Chaos in Classical and Quantum Mechanic, Springer-Verlag, New York, 1990 | MR | Zbl

[8] A. Viale, M. Vicari, N. Zanghi, “Analysis of the loss of coherence in interferometry with macromolecules”, Phys. Rev. A, 68 (2003), 063610 | DOI

[9] Marcos Sampaio, A. F. R. de Toledo Piza, “Dispersion and uncertainty in multislit matter wave diffraction”, Physica A, 387 (2008), 1485–1490 | DOI

[10] M. Brack, R. K. Bhaduri, Semiclassical Physics, Frontiers in Physics, 96, Westview Press, Boulder, CO, 2003, 458 pp. | MR | Zbl

[11] K. Singer, U. Poschinger, M. Murphy, et al., “Colloquium: Trapped ions as quantum bits: Essential numerical tools”, Reviews of Modern Physics, 82 (2010), 2609–2632 | DOI