Title :
Design and analysis of an ultrawide-band distributed CMOS mixer
Author :
Safarian, Amin Q. ; Yazdi, Ahmad ; Heydari, Payam
Author_Institution :
Univ. of California, Irvine, CA, USA
fDate :
5/1/2005 12:00:00 AM
Abstract :
This paper presents the design and analysis of a novel distributed CMOS mixer for ultrawide-band (UWB) receivers. To achieve the UWB RF frequency range required for the UWB communications, the proposed mixer incorporates artificial inductance-capacitance (LC) delay lines in radio frequency (RF), local oscillator (LO), and intermediate frequency signal paths, and single-balanced mixer cells that are distributed along these LC circuits. Closed-form analytical model for the conversion gain of the mixer is presented. Furthermore, a comprehensive noise analysis of the proposed distributed mixer is carried out, which includes calculation of the mixer noise figure (NF) and derivation of the optimum number of stages, n, minimizing the NF. The designed mixer is capable of covering the RF and LO frequencies over a wide range of frequencies from 3.1-8.72 GHz. A two-stage distributed mixer has been fabricated in a 0.18-/spl mu/m CMOS process. Experiments show a conversion gain of more than 2.5 dB for the entire range of the frequencies. The dc power consumption is 10.4 mW.
Keywords :
CMOS integrated circuits; integrated circuit design; microwave mixers; microwave receivers; network analysis; 0.18 micron; 10.4 mW; 2.5 dB; 3.1 to 8.72 GHz; artificial inductance-capacitance delay lines; closed-form analytical model; conversion gain; distributed CMOS mixer; distributed circuit; impulse radio; intermediate frequency signal paths; local oscillator; noise analysis; noise figure; single-balanced mixer; ultrawide-band receivers; wireless communications; Delay lines; Local oscillators; Mixers; Noise figure; Noise measurement; RF signals; Radio frequency; Radiofrequency integrated circuits; Receivers; Ultra wideband communication; CMOS radio frequency; distributed circuit; gain-bandwidth; impulse-radio; mixer; multiband; noise figure (NF); ultrawide-band (UWB); wireless communications;
Journal_Title :
Very Large Scale Integration (VLSI) Systems, IEEE Transactions on
DOI :
10.1109/TVLSI.2005.844288