Title :
Highly Linear Broadband Photonic-Assisted Q-Band ADC
Author :
Esman, Daniel J. ; Wiberg, Andreas O. J. ; Alic, Nikola ; Radic, Stojan
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of California San Diego, La Jolla, CA, USA
Abstract :
A highly linear broadband photonic-assisted analog-to-digital converter (ADC) based on high-frequency optical sampling utilizing a dual output Mach-Zehnder modulator operating with signal frequencies up to 50 GHz is presented. The pulses employed in the optical sampling were generated by a cavity-less pulse source operated at 10 GHz in preference to conventional mode-locked lasers. The optical sampling front-end greatly extends the operational frequency range of the Nyquist limited electronic digitization back-end. The performance of the sampling system is characterized with 7.1 effective number of bits (ENOBs) at 40 with 5 GHz fully accessible bandwidth, and greater than 99 dB·Hz2/3 spurious free dynamic range for the 30-40 GHz frequency range. Furthermore, more than 8 ENOB was achieved by reducing the effective bandwidth to 1 GHz with a digital filter, demonstrating the additional advantage of using a higher sampling rate compared to previous demonstrations. A new figure of merit of photonic-assisted sub-sampled ADCs is also presented accompanied with a comparison to previous implementations.
Keywords :
analogue-digital conversion; digital filters; laser mode locking; microwave photonics; optical filters; optical information processing; optical modulation; optical pulse generation; ENOB; Nyquist limited electronic digitization back-end; cavity-less pulse source; digital filter; dual output Mach-Zehnder modulator; effective number of bits; frequency 10 GHz; frequency 30 GHz to 40 GHz; frequency 5 GHz; high-frequency optical sampling; linear broadband photonic-assisted Q-band ADC; linear broadband photonic-assisted analog-to-digital converter; mode-locked lasers; optical sampling front-end; pulse generation; signal frequency; Bandwidth; Optical fibers; Optical filters; Optical pulses; Photonics; Radio frequency; Analog-digital conversion; detection; microwave photonics; optical data processing; optical fiber communications; sampling; sub-sampling;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2015.2408551