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  1.  97
    Classical Behavior of the Dirac Bispinor.Sarah B. M. Bell, John P. Cullerne & Bernard M. Diaz - 2000 - Foundations of Physics 30 (1):35-57.
    It is usually supposed that the Dirac and radiation equations predict that the phase of a fermion will rotate through half the angle through which the fermion is rotated, which means, via the measured dynamical and geometrical phase factors, that the fermion must have a half-integral spin. We demonstrate that this is not the case and that the identical relativistic quantum mechanics can also be derived with the phase of the fermion rotating through the same angle as does the fermion (...)
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  2.  39
    QED Derived from the Two-Body Interaction.Sarah B. M. Bell, John P. Cullerne & Bernard M. Diaz - 2004 - Foundations of Physics 34 (2):297-333.
    We have shown in a previous paper that the Dirac bispinor can vary like a four-vector and that Quantum Electrodynamics can be reproduced with this form of behaviour. In Part I of this paper, we show that QED with the same transformational behaviour also holds in an alternative space we call M-space. We use the four-vector behaviour to model the two-body interaction in M and show that this has similar physical properties to the usual model in L which it predicts. (...)
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  3.  57
    The Two-Body Interaction with a Circle in Time.Sarah B. M. Bell, John P. Cullerne & Bernard M. Diaz - 2004 - Foundations of Physics 34 (2):335-358.
    We complete our previous(1, 2) demonstration that there is a family of new solutions to the photon and Dirac equations using spatial and temporal circles and four-vector behaviour of the Dirac bispinor. We analyse one solution for a bound state, which is equivalent to the attractive two-body interaction between a charged point particle and a second, which remains at rest. We show this yields energy and angular momentum eigenvalues that are identical to those found by the usual method of solving (...)
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