Unidirectional reflection lasing based on destructive interference and Bragg scattering modulation in defective atomic lattice

Fuente: arXiv
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Auteurs principaux: Zheng, Xinfu, Peng, Chen, Chen, Duanfu, Zhang, Tinggui, Zhang, Hanxiao, Yan, Dong, Wu, Jinhui, Yang, Hong
Format: Preprint
Publié: 2025
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author Zheng, Xinfu
Peng, Chen
Chen, Duanfu
Zhang, Tinggui
Zhang, Hanxiao
Yan, Dong
Wu, Jinhui
Yang, Hong
author_facet Zheng, Xinfu
Peng, Chen
Chen, Duanfu
Zhang, Tinggui
Zhang, Hanxiao
Yan, Dong
Wu, Jinhui
Yang, Hong
contents The novel and ingenious scheme we propose for achieving unidirectional reflection lasing (URL) involves integrating a one-dimensional (1D) defective atomic lattice with a coherent gain atomic system. Its physical essence lies in the fact that the right-side reflectivity is drastically reduced due to the destructive interference between primary and secondary reflections, whereas on the left-side primary reflection is effectively suppressed and the secondary reflection is efficiently enhanced, ultimately reaching the lasing threshold. Through numerical results and further analyses, we have elucidated how to precisely tailor the lattice parameters and coupling fields to control destructive interference point (DIP), thereby realizing URL and enabling its active modulation. Our scheme is experimentally feasible and not only effectively circumvents the stringent conditions faced in directly realizing URL, providing a new pathway, but also beneficial for integrating active photonic devices into compact quantum networks and may improve the efficiency of optical information transmission.
format Preprint
id arxiv_https___arxiv_org_abs_2512_24130
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Unidirectional reflection lasing based on destructive interference and Bragg scattering modulation in defective atomic lattice
Zheng, Xinfu
Peng, Chen
Chen, Duanfu
Zhang, Tinggui
Zhang, Hanxiao
Yan, Dong
Wu, Jinhui
Yang, Hong
Optics
The novel and ingenious scheme we propose for achieving unidirectional reflection lasing (URL) involves integrating a one-dimensional (1D) defective atomic lattice with a coherent gain atomic system. Its physical essence lies in the fact that the right-side reflectivity is drastically reduced due to the destructive interference between primary and secondary reflections, whereas on the left-side primary reflection is effectively suppressed and the secondary reflection is efficiently enhanced, ultimately reaching the lasing threshold. Through numerical results and further analyses, we have elucidated how to precisely tailor the lattice parameters and coupling fields to control destructive interference point (DIP), thereby realizing URL and enabling its active modulation. Our scheme is experimentally feasible and not only effectively circumvents the stringent conditions faced in directly realizing URL, providing a new pathway, but also beneficial for integrating active photonic devices into compact quantum networks and may improve the efficiency of optical information transmission.
title Unidirectional reflection lasing based on destructive interference and Bragg scattering modulation in defective atomic lattice
topic Optics
url https://arxiv.org/abs/2512.24130