Journal of Synthetic Crystals, Volume. 53, Issue 3, 441(2024)
Study on Fabrication of Erbium-Doped Lithium Niobate Thin Film Based on Low Temperature Ion Exchange Method
[1] [1] CHEN G Y, LI N X, DA NG J, et al. Advances in lithium niobate photonics: development status and perspectives[J]. Advanced Photonics, 2022, 4: 034003.
[2] [2] ZHANG M, WANG C, KHAREL P, et al. Integrated lithium niobate electro-optic modulators: when performance meets scalability[J]. Optica, 2021, 8(5): 652.
[3] [3] ZHAO Y J, LIU X Y, YVIND K, et al. Widely-tunable, multi-band Raman laser based on dispersion-managed thin-film lithium niobate microring resonators[J]. Communications Physics, 2023, 6: 350.
[4] [4] ZHOU X T, XUE Y, YE F, et al. High coupling efficiency waveguide grating couplers on lithium niobate[J]. Optics Letters, 2023, 48(12): 3267-3270.
[5] [5] MARINKOVIC' I, DRIMMER M, HENSEN B, et al. Hybrid integration of silicon photonic devices on lithium niobate for optomechanical wavelength conversion[J]. Nano Letters, 2021, 21(1): 529-535.
[6] [6] XUE G T, NIU Y F, LIU X Y, et al. Ultrabright multiplexed energy-time-entangled photon generation from lithium niobate on insulator chip[J]. Physical Review Applied, 2021, 15(6): 064059.
[7] [7] YU M J, CHENG R, REIMER C, et al. Integrated electro-optic isolator on thin-film lithium niobate[J]. Nature Photonics, 2023, 17(8): 666-671.
[8] [8] JIA Y C, WU J W, SUN X L, et al. Integrated photonics based on rare-earth ion-doped thin-film lithium niobate[J]. Laser & Photonics Reviews, 2022, 16(9): 2200059.
[9] [9] LIU Y A, YAN X S, WU J W, et al. On-chip erbium-doped lithium niobate microcavity laser[J]. Science China Physics, Mechanics & Astronomy, 2020, 64(3): 234262.
[10] [10] LUO Q, YANG C, ZHANG R, et al. On-chip erbium-doped lithium niobate microring lasers[J]. Optics Letters, 2021, 46(13): 3275-3278.
[11] [11] ZHOU J X, LIANG Y T, LIU Z X, et al. On-chip integrated waveguide amplifiers on erbium-doped thin-film lithium niobate on insulator[J]. Laser & Photonics Reviews, 2021, 15(8): 2100030.
[12] [12] YU D S, HUMAR M, MESERVE K, et al. Whispering-gallery-mode sensors for biological and physical sensing[J]. Nature Reviews Methods Primers, 2021, 1: 83.
[13] [13] YU Y, YU Z J, ZHANG Z Y, et al. Wavelength-division multiplexing on an etchless lithium niobate integrated platform[J]. ACS Photonics, 2022, 9(10): 3253-3259.
[14] [14] ZHANG X Y, ZHANG B, WEI S H, et al. Telecom-band-integrated multimode photonic quantum memory[J]. Science Advances, 2023, 9(28): eadf4587.
[15] [15] SCHWABE D. Spiral crystal growth in the czochralski process—revisited, with new interpretations[J]. Crystal Research and Technology, 2019, 55(2): 1900073.
[16] [16] WANG S H, YANG L K, CHENG R S, et al. Incorporation of erbium ions into thin-film lithium niobate integrated photonics[EB/OL]. 2019: arXiv: 1912.07584. http://arxiv.org/abs/1912.07584.pdf
[17] [17] SUNTSOV S, RTER C E, KIP D. Er∶Ti∶LiNbO3 ridge waveguide optical amplifiers by optical grade dicing and three-side Er and Ti in-diffusion[J]. Applied Physics B, 2017, 123(4): 118.
Get Citation
Copy Citation Text
HE Yuxuan, WU Jiangwei, CHEN Yuping, CHEN Xianfeng. Study on Fabrication of Erbium-Doped Lithium Niobate Thin Film Based on Low Temperature Ion Exchange Method[J]. Journal of Synthetic Crystals, 2024, 53(3): 441
Category:
Received: Jan. 15, 2024
Accepted: --
Published Online: Jul. 30, 2024
The Author Email: Yuping CHEN (ypchen@sjtu.edu.cn)
CSTR:32186.14.