DocumentCode
3480345
Title
Linearity, noise optimization for two stage RF CMOS LNA
Author
Park, Piljae ; Kim, Cheon Soo ; Yu, Hyun Kyu
Author_Institution
RF CMOS Circuit Team, Electr. Telecommun. Res. Inst., Taejon, South Korea
Volume
2
fYear
2001
fDate
2001
Firstpage
756
Abstract
Deep sub-micron CMOS technology is a good candidate for a wireless communication RF IC because of the integration possibility of IF and RF modules together. For optimum noise performance, the CMOS transistor layout and bias condition are analyzed and discussed. In this paper along with the noise optimum condition, a linearity improvement technique for a cascaded LNA is presented. The LNA for mobile applications should satisfy the noise, linearity and gain performance under the current consumption constraint. If an LNA is designed with more than a two stage structure, then the first stage MOS ought to be optimized for low noise performance in terms of the bias condition and its size because the first stage MOS is the dominant noise contributor of all the cascade stage. The last stage is constructed for linearity optimization, because the last stage linearity is influential for a cascaded LNA
Keywords
CMOS integrated circuits; UHF amplifiers; UHF integrated circuits; cascade networks; circuit optimisation; integrated circuit layout; integrated circuit noise; mobile radio; radio equipment; 2 GHz; CMOS transistor layout; IF modules; RF modules; UHF; bias condition; cascade stage; cascaded LNA; first stage MOS; gain performance; linearity; linearity improvement technique; low noise performance; mobile equipment; noise optimization; optimum noise performance; two stage RF CMOS LNA; wireless communication RF IC; CMOS integrated circuits; CMOS technology; Design optimization; Integrated circuit noise; Linearity; Performance analysis; Performance gain; Radio frequency; Radiofrequency integrated circuits; Wireless communication;
fLanguage
English
Publisher
ieee
Conference_Titel
TENCON 2001. Proceedings of IEEE Region 10 International Conference on Electrical and Electronic Technology
Print_ISBN
0-7803-7101-1
Type
conf
DOI
10.1109/TENCON.2001.949693
Filename
949693
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