DocumentCode :
34813
Title :
A Fully Integrated Radio-Fiber Interface in 65 nm CMOS Technology
Author :
Ahmad, Waheed ; Tormanen, Markus ; Sjoland, Henrik
Author_Institution :
Dept. of Electr. & Inf. Technol., Lund Inst. of Technol., Lund, Sweden
Volume :
26
Issue :
5
fYear :
2014
fDate :
1-Mar-14
Firstpage :
444
Lastpage :
446
Abstract :
In this letter, we present a fully integrated radio-fiber interface implemented in 65-nm CMOS, intended for remote antenna units (RAUs) in distributed antenna systems. To relax the requirements on the optical components, an intermediate frequency signal (100 MHz) is transmitted over the multimode fiber, which is then up-converted to 2.2 GHz inside the RAU. Local oscillator (LO) signals to the mixers are generated by an on-chip frequency synthesizer. The measured optical to electrical conversion gain (V/W) is 59 dB, whereas the input referred current noise is 3.5 pA/√{Hz} and SFDR is 96.5 dB· Hz2/3. An LO leakage of -40 dBc and an image rejection ratio of 43 dB is measured. The circuit achieves an adjacent channel leakage ratio of -39 and -41 dB, for a 10-MHz 32 quadrature amplitude modulation signal at output power of 1 dBm, and a 3.84-MHz quadrature phase shift keying signal at 4 dBm, respectively.
Keywords :
CMOS integrated circuits; antennas; frequency synthesizers; integrated optics; integrated optoelectronics; optical communication equipment; optical frequency conversion; oscillators; quadrature amplitude modulation; radio-over-fibre; CMOS technology; LO leakage; RAU; SFDR; adjacent channel leakage ratio; current noise; distributed antenna systems; frequency 100 MHz; frequency 3.84 MHz to 2.2 GHz; fully integrated radiofiber interface; image rejection ratio; local oscillator; multimode fiber; on-chip frequency synthesizer; optical components; optical-electrical conversion gain; quadrature amplitude modulation signal; quadrature phase shift keying signal; remote antenna units; size 65 nm; Bandwidth; CMOS integrated circuits; CMOS technology; Optical attenuators; Optical imaging; Photodiodes; Vertical cavity surface emitting lasers; CMOS photodetectors; CMOS photodiodes; CMOS technology; multi-mode fiber (MMF); radio over fiber; vertical cavity surface emitting laser (VCSEL);
fLanguage :
English
Journal_Title :
Photonics Technology Letters, IEEE
Publisher :
ieee
ISSN :
1041-1135
Type :
jour
DOI :
10.1109/LPT.2013.2295629
Filename :
6690149
Link To Document :
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