Complementary Quantum Time Distributions from a Single Operational Protocol
Mathieu Beau

TL;DR
This paper introduces two complementary quantum time distributions derived from a single protocol, offering new operational insights into quantum tunneling and the Hartman effect.
Contribution
It constructs activity-based and presence-based quantum time distributions from a single protocol, providing a novel operational interpretation of tunneling times and the Hartman effect.
Findings
Regional QS mean saturates in tunneling regime.
TF mean decreases then increases with barrier width.
Provides an operational interpretation of the Hartman effect.
Abstract
A single operational protocol based on free evolution and projective measurements yields inequivalent quantum time distributions through distinct post-processing procedures. We construct an activity-based time-of-flow (TF) distribution and a presence-based quantum stroboscopic (QS) distribution, providing complementary operational notions of time. Applied to tunneling, the regional QS mean saturates, whereas the TF mean first decreases in the Hartman regime and then grows for larger barrier widths. Within this framework, we provide an operational interpretation of the Hartman effect in terms of quantum time distributions associated with flow through the exit region and occupation within the barrier, capturing the mechanism of early penetration, dominant reflection, and spectrally filtered transmission.
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