Light Propagation through Space-Time Non-Markovian Random Media

Fuente: arXiv
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Autori principali: Wang, Chaoran, Qi, Jinquan, Liu, Shuang, Deng, Chenjin, Han, Shensheng
Natura: Preprint
Pubblicazione: 2026
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author Wang, Chaoran
Qi, Jinquan
Liu, Shuang
Deng, Chenjin
Han, Shensheng
author_facet Wang, Chaoran
Qi, Jinquan
Liu, Shuang
Deng, Chenjin
Han, Shensheng
contents Here, we introduce a stochastic partial differential equation (SPDE) formulation driven by temporally correlated noise to describe light propagation beyond the standard Markov approximation. By representing the squared refractive index fluctuations as a random field with explicit long-range temporal correlations, we demonstrate that the propagation dynamics map exactly onto the hyperbolic Anderson model. This rigorous mapping enables the derivation of new quantitative scaling relations that connect the environment's non-Markovian memory effects to the statistical properties of the emergent light field. We experimentally validate these analytical predictions in an outdoor atmospheric environment, confirming the memory-dependent statistical signatures of the propagated light. Our results establish a precise physical foundation for understanding memory-driven wave phenomena, providing crucial insights for free-space optical communication, remote sensing, and coherent imaging.
format Preprint
id arxiv_https___arxiv_org_abs_2601_11213
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Light Propagation through Space-Time Non-Markovian Random Media
Wang, Chaoran
Qi, Jinquan
Liu, Shuang
Deng, Chenjin
Han, Shensheng
Optics
Mathematical Physics
Applications
Here, we introduce a stochastic partial differential equation (SPDE) formulation driven by temporally correlated noise to describe light propagation beyond the standard Markov approximation. By representing the squared refractive index fluctuations as a random field with explicit long-range temporal correlations, we demonstrate that the propagation dynamics map exactly onto the hyperbolic Anderson model. This rigorous mapping enables the derivation of new quantitative scaling relations that connect the environment's non-Markovian memory effects to the statistical properties of the emergent light field. We experimentally validate these analytical predictions in an outdoor atmospheric environment, confirming the memory-dependent statistical signatures of the propagated light. Our results establish a precise physical foundation for understanding memory-driven wave phenomena, providing crucial insights for free-space optical communication, remote sensing, and coherent imaging.
title Light Propagation through Space-Time Non-Markovian Random Media
topic Optics
Mathematical Physics
Applications
url https://arxiv.org/abs/2601.11213