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Deformation Quantization of Geometric Quantum Mechanics

High Energy Physics - Theory 2008-11-26 v1 Mathematical Physics math.MP Quantum Algebra Quantum Physics

Abstract

Second quantization of a classical nonrelativistic one-particle system as a deformation quantization of the Schrodinger spinless field is considered. Under the assumption that the phase space of the Schrodinger field is CC^{\infty}, both, the Weyl-Wigner-Moyal and Berezin deformation quantizations are discussed and compared. Then the geometric quantum mechanics is also quantized using the Berezin method under the assumption that the phase space is CPCP^{\infty} endowed with the Fubini-Study Kahlerian metric. Finally, the Wigner function for an arbitrary particle state and its evolution equation are obtained. As is shown this new "second quantization" leads to essentially different results than the former one. For instance, each state is an eigenstate of the total number particle operator and the corresponding eigenvalue is always 1{1 \over \hbar}.

Keywords

Cite

@article{arxiv.hep-th/0112049,
  title  = {Deformation Quantization of Geometric Quantum Mechanics},
  author = {H. Garcia-Compean and J. F. Plebanski and M. Przanowski and F. J. Turrubiates},
  journal= {arXiv preprint arXiv:hep-th/0112049},
  year   = {2008}
}

Comments

27+1 pages, harvmac file, no figures

R2 v1 2026-07-22T15:08:01.265Z