• Chinese Optics Letters
  • Vol. 19, Issue 6, 060002 (2021)
Zhe Wang1、2、3, Chaohua Wu4、5, Zhiwei Fang6、*, Min Wang6, Jintian Lin1, Rongbo Wu1、2, Jianhao Zhang1、2, Jianping Yu1、2, Miao Wu6, Wei Chu6, Tao Lu7, Gang Chen4、5、**, and Ya Cheng1、5、6、***
Author Affiliations
  • 1State Key Laboratory of High Field Laser Physics and CAS Center for Excellence in Ultra-intense Laser Science, Shanghai Institute of Optics and Fine Mechanics (SIOM), Chinese Academy of Sciences (CAS), Shanghai 201800, China
  • 2Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, China
  • 3School of Physical Science and Technology, ShanghaiTech University, Shanghai 200031, China
  • 4State Key Laboratory of Quantum Optics and Quantum Optics Devices, Institute of Laser Spectroscopy, Shanxi University, Taiyuan 030006, China
  • 5Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan 030006, China
  • 6The Extreme Optoelectromechanics Laboratory (XXL), School of Physics and Electronic Science, East China Normal University, Shanghai 200241, China
  • 7Department of Electrical and Computer Engineering, University of Victoria, Victoria BC V8P 5C2, Canada
  • show less
    DOI: 10.3788/COL202119.060002 Cite this Article Set citation alerts
    Zhe Wang, Chaohua Wu, Zhiwei Fang, Min Wang, Jintian Lin, Rongbo Wu, Jianhao Zhang, Jianping Yu, Miao Wu, Wei Chu, Tao Lu, Gang Chen, Ya Cheng. High-quality-factor optical microresonators fabricated on lithium niobate thin film with an electro-optical tuning range spanning over one free spectral range [Invited][J]. Chinese Optics Letters, 2021, 19(6): 060002 Copy Citation Text show less
    References

    [1] K. J. Vahala. Optical microcavities. Nature, 424, 839(2003).

    [2] M. Cai, O. Painter, K. J. Vahala. Observation of critical coupling in a fiber taper to a silica-microsphere whispering-gallery mode system. Phys. Rev. Lett., 85, 74(2000).

    [3] M. Soltani, S. Yegnanarayanan, A. Adibi. Ultra-high Q planar silicon microdisk resonators for chip-scale silicon photonics. Opt. Express, 15, 4694(2007).

    [4] J. Lin, Y. Xu, Z. Fang, M. Wang, J. Song, N. Wang, L. Qiao, W. Fang, Y. Cheng. Fabrication of high-Q lithium niobate microresonators using femtosecond laser micromachining. Sci. Rep., 5, 8072(2015).

    [5] M. Kuwata-Gonokami, R. H. Jordan, A. Dodabalapur, H. E. Katz, M. L. Schilling, R. E. Slusher, S. Ozawa. Polymer microdisk and microring lasers. Opt. Lett., 20, 2093(1995).

    [6] J. Ward, O. Benson. WGM microresonators: sensing, lasing and fundamental optics with microspheres. Laser Photon. Rev., 5, 553(2011).

    [7] A. L. Gaeta, M. Lipson, T. J. Kippenberg. Photonic-chip-based frequency combs. Nat. Photon., 13, 158(2019).

    [8] H. Lee, T. Chen, J. Li, K. Y. Yang, S. Jeon, O. Painter, K. J. Vahala. Chemically etched ultrahigh-Q wedge-resonator on a silicon chip. Nat. Photon., 6, 369(2012).

    [9] K. Y. Yang, D. Y. Oh, S. H. Lee, Q. F. Yang, X. Yi, B. Shen, H. Wang, K. Vahala. Bridging ultrahigh-Q devices and photonic circuits. Nat. Photon., 12, 297(2018).

    [10] J. Liu, E. Lucas, A. S. Raja, J. He, J. Riemensberger, R. N. Wang, M. Karpov, H. Guo, R. Bouch, T. J. Kippenberg. Photonic microwave generation in the X- and K-band using integrated soliton microcombs. Nat. Photon., 14, 486(2020).

    [11] D. T. Spencer, T. Drake, T. C. Briles, J. Stone, L. C. Sinclair, C. Fredrick, Q. Li, D. Westly, B. Robert Ilic, A. Bluestone, N. Volet, T. Komljenovic, L. Chang, S. H. Lee, D. Y. Oh, M.G. Suh, K. Y. Yang, M. H. P. Pfeiffer, T. J. Kippenberg, E. Norberg, L. Theogarajan, K. Vahala, N. R. Newbury, K. Srinivasan, J. E. Bowers, S. A. Diddams, S. B. Papp. An optical-frequency synthesizer using integrated photonics. Nature, 557, 81(2018).

    [12] M. G. Suh, Q. F. Yang, K. Y. Yang, X. Yi, K. J. Vahala. Microresonator soliton dual-comb spectroscopy. Science, 354, 600(2016).

    [13] J. Li, M. G. Suh, K. Vahala. Microresonator Brillouin gyroscope. Optica, 4, 346(2017).

    [14] Z. L. Newman, V. Maurice, T. Drake, J. R. Stone, T. C. Briles, D. T. Spencer, C. Fredrick, Q. Li, D. Westly, B. R. Ilic, B. Shen, M. Suh, K. Y. Yang, C. Johnson, D. M. S. Johnson, L. Hollberg, K. J. Vahala, K. Srinivasan, S. A. Diddams, J. Kitching, S. B. Papp, M. T. Hummon. Architecture for the photonic integration of an optical atomic clock. Optica, 6, 680(2019).

    [15] Q. F. Yang, B. Shen, H. Wang, M. Tran, Z. Zhang, K. Y. Yang, L. Wu, C. Bao, J. Bowers, A. Yariv, K. Vahala. Vernier spectrometer using counterpropagating soliton microcombs. Science, 363, 965(2019).

    [16] M. Zhang, B. Buscaino, C. Wang, A. Shams-Ansari, C. Reimer, R. Zhu, J. M. Kahn, M. Lončar. Broadband electro-optic frequency comb generation in a lithium niobate microring resonator. Nature, 568, 373(2019).

    [17] K. Luke, P. Kharel, C. Reimer, L. He, M. Lončar, M. Zhang. Wafer-scale low-loss lithium niobate photonic integrated circuits. Opt. Express, 28, 24452(2020).

    [18] J. Wang, F. Bo, S. Wan, W. Li, F. Gao, J. Li, G. Zhang, J. Xu. High-Q lithium niobate microdisk resonators on a chip for efficient electro-optic modulation. Opt. Express, 23, 23072(2015).

    [19] Z. Fang, Y. Xu, M. Wang, L. Qiao, J. Lin, W. Fang, Y. Cheng. Monolithic integration of a lithium niobate microresonator with a free-standing waveguide using femtosecond laser assisted ion beam writing. Sci. Rep., 7, 45610(2017).

    [20] R. Wu, J. Zhang, N. Yao, W. Fang, L. Qiao, Z. Chai, J. Lin, Y. Cheng. Lithium niobate micro-disk resonators of quality factors above 107. Opt. Lett., 43, 4116(2018).

    [21] R. Wu, M. Wang, J. Xu, J. Qi, W. Chu, Z. Fang, J. Zhang, J. Zhou, L. Qiao, Z. Chai, J. Lin, Y. Cheng. Long low-loss-litium niobate on insulator waveguides with sub-nanometer surface roughness. Nanomaterials, 8, 910(2018).

    [22] J. Zhang, Z. Fang, J. Lin, J. Zhou, M. Wang, R. Wu, R. Gao, Y. Cheng. Fabrication of crystalline microresonators of high quality factors with a controllable wedge angle on lithium niobate on insulator. Nanomaterials, 9, 1218(2019).

    [23] Z. Fang, H. Luo, J. Lin, M. Wang, J. Zhang, R. Wu, J. Zhou, W. Chu, T. Lu, Y. Cheng. Efficient electro-optical tuning of an optical frequency microcomb on a monolithically integrated high-Q lithium niobate microdisk. Opt. Lett., 44, 5953(2019).

    [24] C. Wang, M. Zhang, B. Stern, M. Lipson, M. Lončar. Nanophotonic lithium niobate electro-optic modulators. Opt. Express, 26, 1547(2018).

    [25] T. J. Wang, G. L. Peng, M. Y. Chan, C. H. Chen. On-chip optical microresonators with high electro-optic tuning efficiency. J. Lightwave Technol., 38, 1851(2020).

    CLP Journals

    [1] Fan Yang, Xiansong Fang, Xinyu Chen, Lixin Zhu, Fan Zhang, Zhangyuan Chen, Yanping Li. Monolithic thin film lithium niobate electro-optic modulator with over 110 GHz bandwidth[J]. Chinese Optics Letters, 2022, 20(2): 022502

    [2] Yiran Zhu, Yuan Zhou, Zhe Wang, Zhiwei Fang, Zhaoxiang Liu, Wei Chen, Min Wang, Haisu Zhang, Ya Cheng. Electro-optically tunable microdisk laser on Er3+-doped lithium niobate thin film[J]. Chinese Optics Letters, 2022, 20(1): 011303

    [3] Shuai Wan, Rui Niu, Jin-Lan Peng, Jin Li, Guang-Can Guo, Chang-Ling Zou, Chun-Hua Dong. Fabrication of the high-Q Si3N4 microresonators for soliton microcombs[J]. Chinese Optics Letters, 2022, 20(3): 032201

    [4] Guanghao Shao, Xingwei Ye, Guoqiang Zhang, Yuqi Tan, Jiquan Zhai, Yuhao Yang. In-band intermodulation induced by transient response of erbium-doped fiber amplifier[J]. Chinese Optics Letters, 2022, 20(1): 013901

    Data from CrossRef

    [1] DiFeng Yin, Yuan Zhou, Zhaoxiang Liu, Zhe Wang, Haisu Zhang, Zhiwei Fang, Wei Chu, Rongbo Wu, Jianhao Zhang, Wei Chen, Min Wang, Ya Cheng. Electro-optically tunable microring laser monolithically integrated on lithium niobate on insulator. Optics Letters, 46, 2127(2021).

    Zhe Wang, Chaohua Wu, Zhiwei Fang, Min Wang, Jintian Lin, Rongbo Wu, Jianhao Zhang, Jianping Yu, Miao Wu, Wei Chu, Tao Lu, Gang Chen, Ya Cheng. High-quality-factor optical microresonators fabricated on lithium niobate thin film with an electro-optical tuning range spanning over one free spectral range [Invited][J]. Chinese Optics Letters, 2021, 19(6): 060002
    Download Citation