• Acta Optica Sinica
  • Vol. 43, Issue 10, 1023001 (2023)
Rongqing Xu1, Lei Li1, Meimei Kong1、*, and Hongchao Zhang2
Author Affiliations
  • 1School of Electronic and Optical Engineering, Nanjing University of Posts and Telecommunications, Nanjing 210023, Jiangsu, China
  • 2Faculty of Science, Nanjing University of Science and Technology, Nanjing 210094, Jiangsu, China
  • show less
    DOI: 10.3788/AOS221899 Cite this Article Set citation alerts
    Rongqing Xu, Lei Li, Meimei Kong, Hongchao Zhang. Measurement and Analysis of Transient Process of Electrowetting Liquid Lens[J]. Acta Optica Sinica, 2023, 43(10): 1023001 Copy Citation Text show less
    Experimental setup for measuring the response process of electrowetting liquid lens
    Fig. 1. Experimental setup for measuring the response process of electrowetting liquid lens
    Response results of liquid lens driven by sinusoidal signal with frequency of 330 Hz and amplitude of 23.2 V. (a) Low frequency sinusoidal drive signal; (b) response signal of liquid lens and its decomposition; (c) square of driving voltage and time domain signal of high frequency filtering of response signal; (d) square of driving voltage and frequency spectrum of high frequency filtering of response signal
    Fig. 2. Response results of liquid lens driven by sinusoidal signal with frequency of 330 Hz and amplitude of 23.2 V. (a) Low frequency sinusoidal drive signal; (b) response signal of liquid lens and its decomposition; (c) square of driving voltage and time domain signal of high frequency filtering of response signal; (d) square of driving voltage and frequency spectrum of high frequency filtering of response signal
    Response results of liquid lens driven by sinusoidal signal with frequency of 930 Hz and amplitude of 23.2 V. (a) High frequency sinusoidal driving signal; (b) response signal of liquid lens; (c) response waveform signal of liquid lens at the moment of loading voltage; (d) response waveform signal of liquid lens at the moment of removing voltage
    Fig. 3. Response results of liquid lens driven by sinusoidal signal with frequency of 930 Hz and amplitude of 23.2 V. (a) High frequency sinusoidal driving signal; (b) response signal of liquid lens; (c) response waveform signal of liquid lens at the moment of loading voltage; (d) response waveform signal of liquid lens at the moment of removing voltage
    Response signals of liquid lens during loading and unloading of sinusoidal voltage with different amplitudes. (a) Response signals of liquid lens driven by different voltages; (b) response signals of liquid lens driven by different voltages at the moment of loading voltage; (c) response signals of liquid lens driven by different voltages at the moment of removing voltage
    Fig. 4. Response signals of liquid lens during loading and unloading of sinusoidal voltage with different amplitudes. (a) Response signals of liquid lens driven by different voltages; (b) response signals of liquid lens driven by different voltages at the moment of loading voltage; (c) response signals of liquid lens driven by different voltages at the moment of removing voltage
    Relationship between recoil amplitude and input voltage amplitude during voltage loading and unloading. (a) Relationship between ΔUur and ΔUrr and driving voltage amplitude; (b) relationship between ΔU and driving voltage amplitude; (c) relationship between ΔUur/ΔU and ΔUrr/ΔU and driving voltage amplitude; (d) relationship between ΔT1, ΔT2, Δt1,and Δt2 and driving voltage amplitude
    Fig. 5. Relationship between recoil amplitude and input voltage amplitude during voltage loading and unloading. (a) Relationship between ΔUur and ΔUrr and driving voltage amplitude; (b) relationship between ΔU and driving voltage amplitude; (c) relationship between ΔUurU and ΔUrrU and driving voltage amplitude; (d) relationship between ΔT1, ΔT2, Δt1,and Δt2 and driving voltage amplitude
    Rongqing Xu, Lei Li, Meimei Kong, Hongchao Zhang. Measurement and Analysis of Transient Process of Electrowetting Liquid Lens[J]. Acta Optica Sinica, 2023, 43(10): 1023001
    Download Citation