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Main Authors: Shang, Xiao-Wen, Dou, Jian-Peng, Lu, Feng, Lin, Sen, Tang, Hao, Jin, Xian-Min
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2512.16385
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author Shang, Xiao-Wen
Dou, Jian-Peng
Lu, Feng
Lin, Sen
Tang, Hao
Jin, Xian-Min
author_facet Shang, Xiao-Wen
Dou, Jian-Peng
Lu, Feng
Lin, Sen
Tang, Hao
Jin, Xian-Min
contents Quantum tunnelling, a hallmark phenomenon of quantum mechanics, allows particles to pass through the classically forbidden region. It underpins fundamental processes ranging from nuclear fusion and photosynthesis to the operation of superconducting qubits. Yet the underlying dynamics of particle motion during tunnelling remain subtle and are still the subject of active debate. Here, by analyzing the temporal evolution of the tunnelling process, we show that the particle velocity inside the barrier continuously relaxes from a large initial value toward a smaller one, and may even approach zero in the evanescent regime. Meanwhile, the probability density within the barrier gradually builds up before reaching its stationary profile, in contrast to existing inherently. In addition, starting from the steady-state equations, we derive an explicit relation between the particle velocity and the barrier width, and show that the velocity in evanescent states approaches zero when the barrier is sufficiently wide. These findings resolve the apparent paradox of a vanishing steady-state velocity coexisting with a finite particle density. We point out that defining an effective speed from the probability density, rather than from the probability current, can lead to spuriously nonzero "stationary speed," as appears to be the case in Ref. [Nature 643, 67 (2025)]. Our work establishes a clear dynamical picture for the formation of tunnelling flow and provides a theoretical foundation for testing time-resolved tunnelling phenomena.
format Preprint
id arxiv_https___arxiv_org_abs_2512_16385
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Instantaneous velocity during quantum tunnelling
Shang, Xiao-Wen
Dou, Jian-Peng
Lu, Feng
Lin, Sen
Tang, Hao
Jin, Xian-Min
Quantum Physics
Optics
Quantum tunnelling, a hallmark phenomenon of quantum mechanics, allows particles to pass through the classically forbidden region. It underpins fundamental processes ranging from nuclear fusion and photosynthesis to the operation of superconducting qubits. Yet the underlying dynamics of particle motion during tunnelling remain subtle and are still the subject of active debate. Here, by analyzing the temporal evolution of the tunnelling process, we show that the particle velocity inside the barrier continuously relaxes from a large initial value toward a smaller one, and may even approach zero in the evanescent regime. Meanwhile, the probability density within the barrier gradually builds up before reaching its stationary profile, in contrast to existing inherently. In addition, starting from the steady-state equations, we derive an explicit relation between the particle velocity and the barrier width, and show that the velocity in evanescent states approaches zero when the barrier is sufficiently wide. These findings resolve the apparent paradox of a vanishing steady-state velocity coexisting with a finite particle density. We point out that defining an effective speed from the probability density, rather than from the probability current, can lead to spuriously nonzero "stationary speed," as appears to be the case in Ref. [Nature 643, 67 (2025)]. Our work establishes a clear dynamical picture for the formation of tunnelling flow and provides a theoretical foundation for testing time-resolved tunnelling phenomena.
title Instantaneous velocity during quantum tunnelling
topic Quantum Physics
Optics
url https://arxiv.org/abs/2512.16385