DocumentCode :
191314
Title :
A low phase-noise 24GHz CMOS quadrature-VCO using PMOS-source-follower coupling technique
Author :
Ping-Yi Wang ; Yin-Cheng Chang ; Kai-Hsin Chuang ; Da-Chiang Chang ; Hsu, Shawn S. H.
Author_Institution :
Inst. of Electron. Eng., Nat. Tsing Hua Univ., Hsinchu, Taiwan
fYear :
2014
fDate :
6-9 Oct. 2014
Firstpage :
572
Lastpage :
575
Abstract :
An effective coupling topology for multi-phase oscillators is proposed and demonstrated in a standard 90nm CMOS technology. Compared with the conventional parallel or series coupling methods, the PMOS-source-follower coupled (PSFC) technique with the coupling transistors operated in the cut-off region can significantly reduce the flicker noise and hence the phase noise of VCO. The proposed PSFC QVCOs at 24.39GHz demonstrates a low phase noise of -106.05dBc/Hz at 1MHz offset with a tuning range of 3.22GHz under the supply voltage and current consumption of 1V and 6.2mA, respectively. The proposed PSFC-QVCO exhibits a better FOMT of 188.2dBc/Hz and smaller chip area (core area only 0.18 mm2) than previous works.
Keywords :
CMOS analogue integrated circuits; MMIC oscillators; field effect MMIC; flicker noise; phase noise; voltage-controlled oscillators; CMOS technology; PMOS-source-follower coupling technique; PSFC QVCOs; PSFC technique; coupling transistors; current 6.2 mA; effective coupling topology; flicker noise reduction; frequency 24 GHz; frequency 24.39 GHz; frequency 3.22 GHz; low phase-noise CMOS quadrature-VCO; multiphase oscillators; parallel coupling methods; series coupling methods; size 90 nm; voltage 1 V; 1f noise; CMOS integrated circuits; Couplings; Frequency measurement; Phase noise; Transistors; Voltage-controlled oscillators; CMOS; PSFC-QVCO; flicker noise; phase noise; quadrature voltage-controlled oscillators (QVCOs);
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Microwave Conference (EuMC), 2014 44th European
Conference_Location :
Rome
Type :
conf
DOI :
10.1109/EuMC.2014.6986498
Filename :
6986498
Link To Document :
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