Freeform thin-film lithium niobate mode converter for photon-pair generation

IF 6.6 2区 物理与天体物理 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Nanophotonics Pub Date : 2025-02-06 DOI:10.1515/nanoph-2024-0515
Changhyun Kim, Munseong Bae, Minho Choi, Sangbin Lee, Myunghoo Lee, Chihyeon Kim, Hojoong Jung, Haejun Chung, Hyounghan Kwon
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Abstract

Thin-film lithium niobate (TFLN) has emerged as a promising platform for integrated photonics due to its exceptional material properties. The application of freeform topology optimization to TFLN devices enables the realization of compact designs with complex functionalities and high efficiency. However, the stringent fabrication constraints of TFLN present significant challenges for optimization, particularly in nonlinear photonic devices. In this work, we propose an inverse design methodology that successfully addresses these challenges and demonstrates the development of an efficient freeform TFLN mode converter. The numerically optimized mode converter achieves a transmission efficiency of 67.60 % and a mode purity of 84.58 %. Experimental validation through nonlinear processes, including second harmonic generation and spontaneous parametric down-conversion, shows that the fabricated devices improve the efficiency of these processes by factors of two and three, respectively, compared to devices without freeform designs. The proposed inverse design framework provides a powerful tool for advancing the development of TFLN-based devices, with broad applicability to nonlinear and quantum photonics.
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用于光子对产生的自由形式薄膜铌酸锂模式转换器
薄膜铌酸锂(TFLN)由于其独特的材料特性而成为集成光子学的一个有前途的平台。将自由曲面拓扑优化技术应用于TFLN器件,可以实现功能复杂、结构紧凑、效率高的设计。然而,TFLN严格的制造限制对优化提出了重大挑战,特别是在非线性光子器件中。在这项工作中,我们提出了一种逆设计方法,成功地解决了这些挑战,并展示了一种高效自由形式TFLN模式转换器的开发。数值优化后的模式变换器传输效率为67.60%,模式纯度为84.58%。通过非线性过程(包括二次谐波产生和自发参数下转换)的实验验证表明,与没有自由曲面设计的器件相比,制作的器件分别将这些过程的效率提高了两倍和三倍。所提出的逆设计框架为推进基于tfln的器件的发展提供了强有力的工具,在非线性和量子光子学中具有广泛的适用性。
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来源期刊
Nanophotonics
Nanophotonics NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
13.50
自引率
6.70%
发文量
358
审稿时长
7 weeks
期刊介绍: Nanophotonics, published in collaboration with Sciencewise, is a prestigious journal that showcases recent international research results, notable advancements in the field, and innovative applications. It is regarded as one of the leading publications in the realm of nanophotonics and encompasses a range of article types including research articles, selectively invited reviews, letters, and perspectives. The journal specifically delves into the study of photon interaction with nano-structures, such as carbon nano-tubes, nano metal particles, nano crystals, semiconductor nano dots, photonic crystals, tissue, and DNA. It offers comprehensive coverage of the most up-to-date discoveries, making it an essential resource for physicists, engineers, and material scientists.
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