Relativistic version of the imaginary-time formalism

被引:0
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作者
V. D. Mur
B. M. Karnakov
V. S. Popov
机构
[1] Moscow Engineering-Physics Institute,
[2] Institute of Theoretical and Experimental Physics,undefined
关键词
Elementary Particle; Classical Equation; Potential Barrier; Classical Mechanic; Heavy Atom;
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学科分类号
摘要
A relativistic version of the quasiclassical imaginary-time formalism is developed. It permits calculation of the tunneling probability of relativistic particles through potential barriers, including barriers lacking spherical symmetry. Application of the imaginary-time formalism to concrete problems calls for finding subbarrier trajectories which are solutions of the classical equations of motion, but with an imaginary time (and thus cannot be realized in classical mechanics). The ionization probability of an s level, whose binding energy can be of the order of the rest energy, under the action of electric and magnetic fields of different configuration is calculated using the imaginary-time formalism. Besides the exponential factor, the Coulomb and pre-exponential factors in the ionization probability are calculated. The Hamiltonian approach to the tunneling of relativistic particles is described briefly. Scrutiny of the ionization of heavy atoms by an electric field provides an additional argument against the existence of the “Unruh effect.”
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页码:433 / 444
页数:11
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