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Tunneling time from spin fluctuations in Larmor clock

Quantum Physics 2022-07-27 v2 Mesoscale and Nanoscale Physics Atomic and Molecular Clusters Chemical Physics

Abstract

Tunneling time, time needed for a quantum particle to tunnel through a potential energy barrier, can be measured by a duration marker. One such marker is spin reorientation due to Larmor precession. With a weak magnetic field in zz direction, the Larmor clock reads two times, τy\tau_y and τz\tau_z, for a potential energy barrier along the yy axis. The problem is to determine the actual tunneling time (ATT). B{\"u}ttiker defines τy2+τz2\sqrt{\tau_y^2 + \tau_z^2} to be the ATT. Steinberg and others, on the other hand, identify τy\tau_y with the ATT. The B{\"u}ttiker and Steinberg times are based on average spin components but in non-commuting spin system average of one component requires the other two to fluctuate. In the present work, we study the effects of spin fluctuations and show that the ATT can well be τy+τz2τy\tau_y + \frac{\tau_z^2}{\tau_y}. We analyze the ATT candidates and reveal that the fluctuation-based ATT acts as a transmission time in all of the low-barrier, high-barrier, thick-barrier and classical dynamics limits. We extract this new ATT using the most recent experimental data by the Steinberg group. The new ATT qualifies as a viable tunneling time formula.

Keywords

Cite

@article{arxiv.2207.03991,
  title  = {Tunneling time from spin fluctuations in Larmor clock},
  author = {Durmus Demir},
  journal= {arXiv preprint arXiv:2207.03991},
  year   = {2022}
}

Comments

15 pp, 3 figs, 1 table. To appear in Physics Letters A. v2: Added references

R2 v1 2026-06-25T00:45:44.357Z