Attosecond tunneling time measurements through momentum squeezing in strong field ionization

Fuente: arXiv
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Autori principali: Dubois, Jonathan, Rico, Léonardo, Lévêque, Camille, Caillat, Jérémie, Taïeb, Richard
Natura: Preprint
Pubblicazione: 2025
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author Dubois, Jonathan
Rico, Léonardo
Lévêque, Camille
Caillat, Jérémie
Taïeb, Richard
author_facet Dubois, Jonathan
Rico, Léonardo
Lévêque, Camille
Caillat, Jérémie
Taïeb, Richard
contents Tunneling of a particle through a potential barrier is a fundamental physical process and a major thought-provoking outcome of quantum physics. It is at the basis of multiple scientific and technological advances and strongly influences both the structuring and the dynamics of matter at the microscopic scale. Without a classical counterpart, it defies our intuitive perception and understanding of the motion of a particle. Thus, the temporal characterization of tunneling, typically in terms of the time spent "under the barrier", referred to as tunneling time, raises several debates and questions on its interpretation and measurability. Here we show that an electron wavepacket tunneling out of an atom through the potential barrier induced by a strong electric field, carries in its momentum profile the value of the corresponding tunneling time, in a self-probing manner. In a revisited interpretation of the attoclock setup, we view a circularly polarized light pulse as a temporal prism which maps the barrier configuration, and hence the tunneling dynamics, onto different photoelectron ejection directions. From our simulations, we find that tunneling times in the infrared regime are of the order of hundreds of attoseconds, in agreement with previous theories.
format Preprint
id arxiv_https___arxiv_org_abs_2506_17483
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Attosecond tunneling time measurements through momentum squeezing in strong field ionization
Dubois, Jonathan
Rico, Léonardo
Lévêque, Camille
Caillat, Jérémie
Taïeb, Richard
Atomic Physics
Quantum Physics
Tunneling of a particle through a potential barrier is a fundamental physical process and a major thought-provoking outcome of quantum physics. It is at the basis of multiple scientific and technological advances and strongly influences both the structuring and the dynamics of matter at the microscopic scale. Without a classical counterpart, it defies our intuitive perception and understanding of the motion of a particle. Thus, the temporal characterization of tunneling, typically in terms of the time spent "under the barrier", referred to as tunneling time, raises several debates and questions on its interpretation and measurability. Here we show that an electron wavepacket tunneling out of an atom through the potential barrier induced by a strong electric field, carries in its momentum profile the value of the corresponding tunneling time, in a self-probing manner. In a revisited interpretation of the attoclock setup, we view a circularly polarized light pulse as a temporal prism which maps the barrier configuration, and hence the tunneling dynamics, onto different photoelectron ejection directions. From our simulations, we find that tunneling times in the infrared regime are of the order of hundreds of attoseconds, in agreement with previous theories.
title Attosecond tunneling time measurements through momentum squeezing in strong field ionization
topic Atomic Physics
Quantum Physics
url https://arxiv.org/abs/2506.17483