Subwavelength Photorefractive Grating in a Thin-Film Lithium Niobate Microcavity

Fuente: arXiv
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Main Authors: Hou, Jiankun, Zhu, Jiefu, Ma, Ruixin, Xue, Boyi, Zhu, Yicheng, Lin, Jintian, Jiang, Xiaoshun, Chen, Xianfeng, Cheng, Ya, Ge, Li, Zheng, Yuanlin, Wan, Wenjie
Format: Preprint
Published: 2024
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author Hou, Jiankun
Zhu, Jiefu
Ma, Ruixin
Xue, Boyi
Zhu, Yicheng
Lin, Jintian
Jiang, Xiaoshun
Chen, Xianfeng
Cheng, Ya
Ge, Li
Zheng, Yuanlin
Wan, Wenjie
author_facet Hou, Jiankun
Zhu, Jiefu
Ma, Ruixin
Xue, Boyi
Zhu, Yicheng
Lin, Jintian
Jiang, Xiaoshun
Chen, Xianfeng
Cheng, Ya
Ge, Li
Zheng, Yuanlin
Wan, Wenjie
contents Subwavelength gratings play a fundamental and pivotal role in numerous science and applications for wave manipulation, exhibiting distinctive features such as filtering, phase manipulation, and anti-reflection. However, conventional fabrication methods for ultrasmall periodic structures are constrained by the fundamental optical diffraction limit, making it challenging to produce subwavelength gratings for optics. Here, we demonstrate a novel technique to build a reconfigurable subwavelength photorefractive grating (SPG) in a thin-film lithium niobate on the platform of an optical microcavity. Such SPGs are optically induced through the photorefractive effect and the subwavelength features originate from the spatial phase modulations of the pump's standing wave. The resulting SPGs lead to the mode splitting of two counter-propagating modes inside the microcavity, exhibiting an Electromagnetically Induced Transparency (EIT)-like transmission spectrum. Moreover, the unique subwavelength characteristic of SPGs enables first-order quasi-phase-matching for backward second-harmonic generation, a long-standing problem in nonlinear optics. Also, free-space-to-chip vertical nonlinear frequency conversion can be achieved in a similar manner. These results provide a flexible approach towards fabricating subwavelength gratings, which holds significant potential in various applications such as nonlinear frequency conversion, optical communication, sensing, and quantum technologies.
format Preprint
id arxiv_https___arxiv_org_abs_2402_08930
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Subwavelength Photorefractive Grating in a Thin-Film Lithium Niobate Microcavity
Hou, Jiankun
Zhu, Jiefu
Ma, Ruixin
Xue, Boyi
Zhu, Yicheng
Lin, Jintian
Jiang, Xiaoshun
Chen, Xianfeng
Cheng, Ya
Ge, Li
Zheng, Yuanlin
Wan, Wenjie
Optics
Subwavelength gratings play a fundamental and pivotal role in numerous science and applications for wave manipulation, exhibiting distinctive features such as filtering, phase manipulation, and anti-reflection. However, conventional fabrication methods for ultrasmall periodic structures are constrained by the fundamental optical diffraction limit, making it challenging to produce subwavelength gratings for optics. Here, we demonstrate a novel technique to build a reconfigurable subwavelength photorefractive grating (SPG) in a thin-film lithium niobate on the platform of an optical microcavity. Such SPGs are optically induced through the photorefractive effect and the subwavelength features originate from the spatial phase modulations of the pump's standing wave. The resulting SPGs lead to the mode splitting of two counter-propagating modes inside the microcavity, exhibiting an Electromagnetically Induced Transparency (EIT)-like transmission spectrum. Moreover, the unique subwavelength characteristic of SPGs enables first-order quasi-phase-matching for backward second-harmonic generation, a long-standing problem in nonlinear optics. Also, free-space-to-chip vertical nonlinear frequency conversion can be achieved in a similar manner. These results provide a flexible approach towards fabricating subwavelength gratings, which holds significant potential in various applications such as nonlinear frequency conversion, optical communication, sensing, and quantum technologies.
title Subwavelength Photorefractive Grating in a Thin-Film Lithium Niobate Microcavity
topic Optics
url https://arxiv.org/abs/2402.08930