• Photonics Research
  • Vol. 10, Issue 3, 697 (2022)
Bingcheng Pan1, Hongyuan Cao1, Yishu Huang1, Zong Wang2, Kaixuan Chen2, Huan Li1, Zejie Yu1、3、4、6、*, and Daoxin Dai1、3、4、5、7、*
Author Affiliations
  • 1State Key Laboratory for Modern Optical Instrumentation, Center for Optical & Electromagnetic Research, College of Optical Science and Engineering, International Research Center for Advanced Photonics, Zhejiang University, Zijingang Campus, Hangzhou 310058, China
  • 2Guangdong Provincial Key Laboratory of Optical Information Materials and Technology, South China Academy of Advanced Optoelectronics, South China Normal University, Higher-Education Mega-Center, Guangzhou 510006, China
  • 3Jiaxing Key Laboratory of Photonic Sensing & Intelligent Imaging, Jiaxing 314000, China
  • 4Intelligent Optics & Photonics Research Center, Jiaxing Research Institute Zhejiang University, Jiaxing 314000, China
  • 5Ningbo Research Institute, Zhejiang University, Ningbo 315100, China
  • 6e-mail: zjyu@zju.edu.cn
  • 7e-mail: dxdai@zju.edu.cn
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    DOI: 10.1364/PRJ.449172 Cite this Article Set citation alerts
    Bingcheng Pan, Hongyuan Cao, Yishu Huang, Zong Wang, Kaixuan Chen, Huan Li, Zejie Yu, Daoxin Dai. Compact electro-optic modulator on lithium niobate[J]. Photonics Research, 2022, 10(3): 697 Copy Citation Text show less
    (a) Schematic configuration of the proposed ultracompact and high-speed EO modulator using a new 2×2 FP cavity on an LNOI platform; top views of (b) a mode (de)multiplexer and (c) an AMWG.
    Fig. 1. (a) Schematic configuration of the proposed ultracompact and high-speed EO modulator using a new 2×2 FP cavity on an LNOI platform; top views of (b) a mode (de)multiplexer and (c) an AMWG.
    (a) Calculated transmissions from the TE1 and TE0 modes of waveguide A; (b) simulated light propagation when the TE1 and TE0 modes are launched from the right side of the dual-core adiabatic taper (at 1550 nm); (c) calculated transmission (T) and reflection (R) of the AMWG when the TE0 mode is launched; (d) simulated light propagation in the designed AMWG for wavelengths of 1550 nm and 1600 nm, respectively.
    Fig. 2. (a) Calculated transmissions from the TE1 and TE0 modes of waveguide A; (b) simulated light propagation when the TE1 and TE0 modes are launched from the right side of the dual-core adiabatic taper (at 1550 nm); (c) calculated transmission (T) and reflection (R) of the AMWG when the TE0 mode is launched; (d) simulated light propagation in the designed AMWG for wavelengths of 1550 nm and 1600 nm, respectively.
    (a) The optical microscope image of the fabricated FP cavity modulator based on AMWGs; the SEM images of (b) the dual-core taper of mode (de)multiplexer, (c) the modulation region, and (d) the AMWG.
    Fig. 3. (a) The optical microscope image of the fabricated FP cavity modulator based on AMWGs; the SEM images of (b) the dual-core taper of mode (de)multiplexer, (c) the modulation region, and (d) the AMWG.
    Measured transmissions (a) T13/T14 and (b) T23/T24 of the fabricated modulator; measured transmissions (c) T13 and (d) T14 when applying different voltages of −20, −10, 0, 10, and 20 V.
    Fig. 4. Measured transmissions (a) T13/T14 and (b) T23/T24 of the fabricated modulator; measured transmissions (c) T13 and (d) T14 when applying different voltages of 20, 10, 0, 10, and 20 V.
    Measured small-signal EO response (S21) of the fabricated EO modulator for the transmissions (a) T13 and (b) T14.
    Fig. 5. Measured small-signal EO response (S21) of the fabricated EO modulator for the transmissions (a) T13 and (b) T14.
    Measured eye diagrams for the OOK signal at the data rate of 40 Gbps and the PAM4 signal at the data rate of 80 Gbps for the transmissions (a) T13 and (b) T14.
    Fig. 6. Measured eye diagrams for the OOK signal at the data rate of 40 Gbps and the PAM4 signal at the data rate of 80 Gbps for the transmissions (a) T13 and (b) T14.
    Bingcheng Pan, Hongyuan Cao, Yishu Huang, Zong Wang, Kaixuan Chen, Huan Li, Zejie Yu, Daoxin Dai. Compact electro-optic modulator on lithium niobate[J]. Photonics Research, 2022, 10(3): 697
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