Title :
A 24-Gb/s Double-Sampling Receiver for Ultra-Low-Power Optical Communication
Author :
Nazari, Masoud Honarvar ; Emami-Neyestanak, A.
Author_Institution :
California Inst. of Technol., Pasadena, CA, USA
Abstract :
This paper describes a dense, high-speed, and low-power CMOS optical receiver implemented in a 65-nm CMOS technology. High data rate is achieved using an RC double-sampling front-end and a novel dynamic offset-modulation technique. The low-voltage double-sampling technique provides high power efficiency by avoiding linear high-gain elements conventionally employed in transimpedance-amplifier (TIA) receivers. In addition, the demultiplexed output of the receiver helps save power in the following digital blocks. The receiver functionality was validated by electrical and optical measurements. The receiver achieves up to 24 Gb/s data rate with better than 160-μA current sensitivity in an experiment performed by a photodiode current emulator embedded on-chip. Optical measurements performed by a 1550-nm wire-bonded photodiode show better than - 4.7-dBm optical sensitivity at 24 Gb/s. The receiver offers peak power efficiency of 0.36 pJ/b at 20 Gb/s from a 1.2-V supply and occupies less than 0.0028 mm2 silicon area.
Keywords :
CMOS integrated circuits; integrated optoelectronics; low-power electronics; operational amplifiers; optical fibre amplifiers; optical modulation; optical receivers; photodiodes; CMOS technology; RC double-sampling front-end; TIA receivers; bit rate 20 Gbit/s; bit rate 24 Gbit/s; digital blocks; double-sampling receiver; dynamic offset-modulation technique; electrical measurements; high data rate; linear high-gain elements; low-power CMOS optical receiver; low-voltage double-sampling technique; optical measurements; photodiode current emulator embedded on-chip; receiver functionality; size 65 nm; transimpedance-amplifier receivers; ultra-low-power optical communication; voltage 1.2 V; wavelength 1550 nm; wire-bonded photodiode; Bandwidth; Capacitance; Noise; Optical receivers; Photodiodes; Sensitivity; Demultiplexing; double-sampling; dynamic offset modulation; low-power; optical interconnects; optical receiver;
Journal_Title :
Solid-State Circuits, IEEE Journal of
DOI :
10.1109/JSSC.2012.2227612