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Quantum principles and free particlesThe quantum principles that establish the energy levels and degeneracies needed to evaluate the partition functions are explored. The uncertainty principle is associated with the dual wave-particle nature of the model used to describe quantized gas particles. The Schroedinger wave equation is presented as a generalization of Maxwell's wave equation; the former applies to all particles while the Maxwell equation applies to the special case of photon particles. The size of the quantum cell in phase space and the representation of momentum as a space derivative operator follow from the uncertainty principle. A consequence of this is that steady-state problems that are space-time dependent for the classical model become only space dependent for the quantum model and are often easier to solve. The partition function is derived for quantized free particles and, at normal conditions, the result is the same as that given by the classical phase integral. The quantum corrections that occur at very low temperatures or high densities are derived. These corrections for the Einstein-Bose gas qualitatively describe the condensation effects that occur in liquid helium, but are unimportant for most practical purposes otherwise. However, the corrections for the Fermi-Dirac gas are important because they quantitatively describe the behavior of high-density conduction electron gases in metals and explain the zero point energy and low specific heat exhibited in this case.
Document ID
19760014919
Acquisition Source
Legacy CDMS
Document Type
Other
Date Acquired
August 8, 2013
Publication Date
January 1, 1976
Publication Information
Publication: Mol. Phys. of Equilibrium Gases: A Handbook for Engrs.
Subject Category
Atomic And Molecular Physics
Accession Number
76N22007
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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