Title :
Analog Signal Transmission in a High-Contrast-Gratings-Based Hollow-Core-Waveguide
Author :
Huang, H. ; Yue, Y. ; Zhang, L. ; Chase, C. ; Parekh, D. ; Sedgwick, F. ; Wu, M.C. ; Chang-Hasnain, C.J. ; Tur, M. ; Willner, A.E.
Author_Institution :
Dept. of Electr. Eng., Univ. of Southern California, Los Angeles, CA, USA
Abstract :
In this paper, the performance of an on-chip hollow-core-waveguide (HW) using high-contrast gratings (HCG) for analog signal transmission is analyzed numerically. Simulation results indicate that after propagating 100 m in a HCG-HW with optimally designed parameters, there is very little degradation of either third-order intermodulation distortion spur-free dynamic range (IM3 SFDR) or third-order harmonic distortion (THD) SFDR. Due to the chromatic dispersion of the HCG-HW, the highest second-order harmonic distortion (SHD) SFDR is limited to 107.3 dB · Hz1 / 2. In addition, >; 100 dB · Hz 2/3 IM3 SFDR can be achieved over a radio frequency (RF) range of 80 GHz and an optical wavelength bandwidth of 50 nm after propagation 100 m through a HCG-HW. The parameter dependence of the waveguide performance is also investigated. With a ± 20 nm variation on all parameters, the propagation length in an HCG-HW is limited to ~ 6 m in order to maintain an IM3 SFDR of >; 100 dB · Hz 2 / 3.
Keywords :
analogue integrated circuits; diffraction gratings; harmonic distortion; integrated optics; intermodulation distortion; light propagation; numerical analysis; optical distortion; optical modulation; optical waveguides; HCG-HW; IM3 SFDR; analog signal transmission; chromatic dispersion; frequency 80 GHz; high-contrast-grating-based hollow-core-waveguide; numerical analysis; on-chip hollow-core-waveguide; optical wavelength bandwidth; optimally designed parameters; parameter dependence; propagation length; radiofrequency range; second-order harmonic distortion SFDR; third-order harmonic distortion SFDR; third-order intermodulation distortion spur-free dynamic range; waveguide performance; wavelength 50 nm; Dynamic range; Harmonic distortion; Integrated optics; Intermodulation distortion; Microwave photonics; Dynamic range; harmonic distortion; integrated optical waveguides; intermodulation distortion; microwave photonics;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2012.2224844