Tunable and stable micro-ring resonator based on thin-film lithium tantalate

IF 5.4 1区 物理与天体物理 Q1 OPTICS APL Photonics Pub Date : 2024-03-22 DOI:10.1063/5.0187996
Jiayang Yu, Ziliang Ruan, Yu Xue, Haohua Wang, Ranfeng Gan, Tian Gao, Changjian Guo, Kaixuan Chen, Xin Ou, Liu Liu
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Abstract

As ferroelectric materials, lithium tantalate and lithium niobate share similar material characteristics, such as a high Pockels effect and nonlinear optical coefficients. When compared to lithium niobate, lithium tantalate offers a higher optical damage threshold, a broader transparent window, and lower birefringence, making it a promising candidate for high-performance electro-optical photonic integrated devices. In this study, we design and successfully fabricate micro-ring resonators on an acoustic-grade lithium-tantalate-on-insulator wafer, demonstrating their tunability and dynamic modulation capabilities. Experimental results indicate that the achieved thin-film lithium tantalate based micro-ring resonator exhibits an intrinsic Q-factor of 8.4 × 105, corresponding to a waveguide propagation loss of 0.47 dB/cm and a tuning efficiency of 1.94 pm/V. More importantly, as compared to those based on thin-film lithium niobate, a much weaker photorefractive effect and drift phenomenon around the 1550 nm wavelength under a direct-current drive are observed in the present fabricated thin-film lithium tantalate micro-rings with a silicon oxide over-cladding and a tuning electrode on top.
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基于薄膜钽酸锂的可调且稳定的微环谐振器
作为铁电材料,钽酸锂和铌酸锂具有相似的材料特性,例如高波克尔斯效应和非线性光学系数。与铌酸锂相比,钽酸锂具有更高的光损伤阈值、更宽的透明窗口和更低的双折射,因此有望成为高性能光电集成器件的候选材料。在本研究中,我们在声学级钽酸锂绝缘体晶片上设计并成功制造了微环谐振器,展示了其可调谐性和动态调制能力。实验结果表明,基于钽酸锂薄膜的微环谐振器的本征 Q 因子为 8.4 × 105,对应的波导传播损耗为 0.47 dB/cm,调谐效率为 1.94 pm/V。更重要的是,与基于薄膜铌酸锂的谐振器相比,在直流驱动下,本制备的薄膜钽酸锂微环在 1550 nm 波长附近的光折射效应和漂移现象要弱得多。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
APL Photonics
APL Photonics Physics and Astronomy-Atomic and Molecular Physics, and Optics
CiteScore
10.30
自引率
3.60%
发文量
107
审稿时长
19 weeks
期刊介绍: APL Photonics is the new dedicated home for open access multidisciplinary research from and for the photonics community. The journal publishes fundamental and applied results that significantly advance the knowledge in photonics across physics, chemistry, biology and materials science.
期刊最新文献
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