The Phase of a Quantum Mechanical Particle in Curved Spacetime

被引:0
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作者
P. M. Alsing
J. C. Evans
K. K. Nandi
机构
[1] University of New Mexico,Albuquerque High Performance Computing Center
[2] University of Puget Sound,Department of Physics and Astronomy
[3] University of North Bengal,Department of Mathematics
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Quantum phase; wave equations; curved spacetime;
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摘要
We investigate the quantum mechanical wave equations for free particles of spin 0, 1/2, 1 in the background of an arbitrary static gravitational field in order to explicitly determine if the phase of the wavefunction is S/ħ = ∫ pμdxμ/ħ, as is often quoted in the literature. We work in isotropic coordinates where the wave equations have a simple manageable form and do not make a weak gravitational field approximation. We interpret these wave equations in terms of a quantum mechanical particle moving in medium with a spatially varying effective index of refraction. Due to the first order spatial derivative structure of the Dirac equation in curved spacetime, only the spin 1/2 particle has exactly the quantum mechanical phase as indicated above. The second order spatial derivative structure of the spin 0 and spin 1 wave equations yield the above phase only to lowest order in ħ. We develop a WKB approximation for the solution of the spin 0 and spin 1 wave equations and explore amplitude and phase corrections beyond the lowest order in ħ. For the spin 1/2 particle we calculate the phase appropriate for neutrino flavor oscillations.
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页码:1459 / 1487
页数:28
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