Abstract

This paper investigates the problem of a relativistic Dirac half-integer spin free particle tunneling through a rectangular quantum-mechanical barrier. If the energy difference between the barrier and the particle is positive, and the barrier width is large enough, there is proof that the tunneling may be superluminal. For first spinor components of particle and antiparticle states, the tunneling is always superluminal regardless the barrier width. Conversely, the second spinor components of particle and antiparticle states may be either subluminal or superluminal depending on the barrier width. These results derive from studying the tunneling time in terms of phase time. For the first spinor components of particle and antiparticle states, it is always negative while for the second spinor components of particle and antiparticle states, it is always positive, whatever the height and width of the barrier. In total, the tunneling time always remains positive for particle states while it becomes negative for antiparticle ones. Furthermore, the phase time tends to zero, increasing the potential barrier both for particle and antiparticle states. This agrees with the interpretation of quantum tunneling that the Heisenberg uncertainty principle provides. This study’s results are innovative with respect to those available in the literature. Moreover, they show that the superluminal behaviour of particles occurs in those processes with high-energy confinement.

Highlights

  • Several theoretical and experimental studies in the past decades have examined phenomena involving superluminal waves and objects because of their implication in quantum and cosmological physics [1,2,3,4,5,6,7,8,9]

  • Summarizing, we have considered tunneling of a relativistic free particle with halfinteger spin through a one-dimensional potential barrier

  • The analysis suggests that the total transmission is almost always superluminal for antiparticle states and may be subluminal or superluminal for particle states

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Summary

XXXI International Workshop on High Energy Physics

Critical Points in the Modern Particle Physics International Journal of Modern Physics: Conference Series Vol 47 (2018) 1860102 (7 pages) © The Author(s) DOI: 10.1142/ S2010194518601023. Superluminal Tunneling of a Relativistic Half-Integer Spin Particle Through a Potential Barrier. The second spinor components of particle and antiparticle states may be either subluminal or superluminal depending on the barrier width. These results derive from studying the tunneling time in terms of phase time. The phase time tends to zero, increasing the potential barrier both for particle and antiparticle states. This agrees with the interpretation of quantum tunneling that the Heisenberg uncertainty principle provides. This study’s results are innovative with respect to those available in the literature They show that the superluminal behaviour of particles occurs in those processes with high-energy confinement

Introduction
The scattering model
Transmission and reflection amplitudes
Tunneling time for particle states
Tunneling time for antiparticle states
Conclusion
Full Text
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