Title :
Photonic Bandwidth Compression Front End for Digital Oscilloscopes
Author :
Chou, Jason ; Conway, Josh A. ; Sefler, George A. ; Valley, George C. ; Jalali, Bahram
Author_Institution :
Electron. & Photonics Lab., Aerosp. Corp., El Segundo, CA, USA
Abstract :
Time-stretch photonic analog-to-digital converter (ADC) technology is used to make an optical front end that compresses radio-frequency (RF) bandwidth before input to a digital oscilloscope. To operate a time-stretch ADC in a continuous-time mode for bandwidth compression, the optical signal on which the RF is modulated must be segmented and demultiplexed. We demonstrate both spectral and temporal methods for overlapping the channels. Using the temporal method, we obtain a compression ratio of 3 with four channels. Mating this optical front end with a state-of-the-art four-channel digital oscilloscope with an input bandwidth of 16 GHz and a sampling rate of 50 GS/s gives a digitizer with 150 GS/s and an input bandwidth of 48 GHz. We digitize RF signals up to 45 GHz and obtain effective number of bits (ENOB) ~ 2.8 with single channels and ~ 2.5 with multiple channels, both measured over the 48-GHz instantaneous bandwidth of our system.
Keywords :
analogue-digital conversion; bandwidth compression; microwave photonics; optical modulation; oscilloscopes; ADC; ENOB; RF modulation; bandwidth 16 GHz; bandwidth 48 GHz; digital oscilloscopes; effective number of bits; optical front end; photonic analog-to-digital converter; photonic bandwidth compression; photonic time stretch; Analog-to-digial conversion (ADC); microwave photonics; optical analog link; optical modulation; optical signal processing; photonic assisted ADC; photonic time stretch;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2009.2030519