Title :
Design optimization of low-impedance high-speed optical modulators for digital performance
Author_Institution :
Inst. of Electro-Opt. Eng., Nat. Sun Yat-Sen Univ., Kaohsiung, Taiwan
Abstract :
Limiting-eye patterns (LEPs) for various types of optical modulators are constructed from the inverse Fourier transform of the frequency-domain voltage-length integral (VLI). Various transmission-line circuits for low-characteristic-impedance (typically 23 Ω) modulators are optimized on the basis of the maximum opening of the LEP. The results show that localized pad capacitances, when used in combination with sections of a high-impedance (typically 75 Ω) transmission line, can be beneficial to the achievement of better modulator performance. Splitting the active waveguide into three segments can significantly increase the modulator bandwidth. However, passive-optical-waveguide sections several times longer than the active waveguides are required to achieve optimum performance. In the frequency domain, the simultaneous optimization of the bandwidth and the group-delay curve is shown to be crucial for achieving good digital performance.
Keywords :
Fourier transforms; delays; electro-optical modulation; integrated optoelectronics; optical waveguides; transmission lines; active waveguide; design optimization; digital performance; frequency-domain integral; group-delay curve; high-impedance transmission line; high-speed modulators; inverse Fourier transform; limiting-eye patterns; localized pad capacitance; low-impedance modulators; optical modulators; passive-optical-waveguide sections; transmission-line circuits; voltage-length integral; Bandwidth; Circuits; Design optimization; Digital modulation; Fourier transforms; High speed optical techniques; Optical modulation; Optical waveguides; Transmission lines; Voltage; Digital modulation; Mach–Zehnder (M–Z) modulators (MZMs); distributed parameter circuits; electroabsorption (EA); optical intensity modulation; time-domain analysis; traveling wave (TW); waveguide modulators;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2005.858243