English

Quantum-wave evolution in a step potential barrier

Quantum Physics 2009-11-07 v1

Abstract

By using an exact solution to the time-dependent Schr\"{o}dinger equation with a point source initial condition, we investigate both the time and spatial dependence of quantum waves in a step potential barrier. We find that for a source with energy below the barrier height, and for distances larger than the penetration length, the probability density exhibits a {\it forerunner} associated with a non-tunneling process, which propagates in space at exactly the semiclassical group velocity. We show that the time of arrival of the maximum of the {\it forerunner} at a given fixed position inside the potential is exactly the traversal time, τ\tau. We also show that the spatial evolution of this transient pulse exhibits an invariant behavior under a rescaling process. This analytic property is used to characterize the evolution of the {\it forerunner}, and to analyze the role played by the time of arrival, 31/2τ3^{-1/2}\tau, found recently by Muga and B\"{u}ttiker [Phys. Rev. A {\bf 62}, 023808 (2000)].

Keywords

Cite

@article{arxiv.quant-ph/0210010,
  title  = {Quantum-wave evolution in a step potential barrier},
  author = {Jorge Villavicencio and Roberto Romo and Sukey Sosa y Silva},
  journal= {arXiv preprint arXiv:quant-ph/0210010},
  year   = {2009}
}

Comments

To be published in Phys. Rev. A (2002)