TY - GEN
T1 - Electrically Tunable Microwave Photonic Filter Using a Phase-Shifted Waveguide Bragg Grating on Thin-Film Lithium Niobate
AU - Wu, Xuan
AU - Wang, Bin
AU - Zhang, Weifeng
N1 - Publisher Copyright:
© 2025 IEEE.
PY - 2025
Y1 - 2025
N2 - We propose and experimentally demonstrate an electrically tunable microwave photonic filter (MPF) based on a phase-shifted waveguide Bragg grating (PS-WBG) on thin-film lithium niobate (TFLN). The proposed MPF is realized via phasemodulation to intensity-modulation (PM-IM) conversion, in which a PS-WBG fabricated on TFLN serves as the optical notch filter. By mapping the optical spectral response of the PS-WBG to the microwave domain, a bandpass MPF can be realized. Leveraging the strong electro-optic effect of the lithium niobate, the center frequency of the MPF can be widely tuned by controlling the electrical power applied to the metal electrodes. Experimental results demonstrate that the implemented MPF has a 3-dB passband of 1.992 GHz and a wide tuning range from 3 GHz to 17 GHz. These performance metrics demonstrate strong potential of the proposed MPF for deployment in advanced radar imaging and next-generation wireless communications systems.
AB - We propose and experimentally demonstrate an electrically tunable microwave photonic filter (MPF) based on a phase-shifted waveguide Bragg grating (PS-WBG) on thin-film lithium niobate (TFLN). The proposed MPF is realized via phasemodulation to intensity-modulation (PM-IM) conversion, in which a PS-WBG fabricated on TFLN serves as the optical notch filter. By mapping the optical spectral response of the PS-WBG to the microwave domain, a bandpass MPF can be realized. Leveraging the strong electro-optic effect of the lithium niobate, the center frequency of the MPF can be widely tuned by controlling the electrical power applied to the metal electrodes. Experimental results demonstrate that the implemented MPF has a 3-dB passband of 1.992 GHz and a wide tuning range from 3 GHz to 17 GHz. These performance metrics demonstrate strong potential of the proposed MPF for deployment in advanced radar imaging and next-generation wireless communications systems.
KW - microwave photonic filter
KW - phase-shifted waveguide Bragg grating
KW - thin-film lithium niobate
UR - https://www.scopus.com/pages/publications/105017805678
U2 - 10.1109/ICWOC65853.2025.11151122
DO - 10.1109/ICWOC65853.2025.11151122
M3 - Conference contribution
AN - SCOPUS:105017805678
T3 - 2025 13th International Conference on Intelligent Computing and Wireless Optical Communications, ICWOC 2025
SP - 102
EP - 105
BT - 2025 13th International Conference on Intelligent Computing and Wireless Optical Communications, ICWOC 2025
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 13th International Conference on Intelligent Computing and Wireless Optical Communications, ICWOC 2025
Y2 - 27 June 2025 through 29 June 2025
ER -