Title :
A 14-GHz 256/257 dual-modulus prescaler with secondary feedback and its application to a monolithic CMOS 10.4-GHz phase-locked loop
Author :
Yang, Dong-Jun ; O, K.K.
Author_Institution :
Silicon Microwave Integrated Circuits & Syst. Res. Group, Univ. of Florida, Gainesville, FL, USA
Abstract :
A 14-GHz 256/257 dual-modulus prescaler is implemented using secondary feedback in the synchronous 4/5 divider on a 0.18-μm foundry CMOS process. The dual-modulus scheme utilizes a 4/5 synchronous counter which adopts a traditional MOS current mode logic clocked D flip-flop. The secondary feedback paths limit signal swing to achieve high-speed operation. The maximum operating frequency of the prescaler is 14 GHz at VDD=1.8 V. Utilizing the prescaler, a 10.4-GHz monolithic phase-locked loop (PLL) is demonstrated. The voltage-controlled oscillator (VCO) operates between 9.7-10.4 GHz. The tuning range of the VCO is 690 MHz. The phase noise of the PLL and VCO at a 3-MHz offset with Ivco=4.9 mA is -117 and -119 dBc/Hz, respectively. At the current consumption of Ivco=8.1 mA, the phase noise is -122 and -122 dBc/Hz, respectively. The PLL output phase noise at a 50-kHz offset is -80 dBc/Hz. The PLL consumes ∼31 mA at VDD=1.8 V.
Keywords :
CMOS integrated circuits; circuit feedback; circuit tuning; field effect MMIC; integrated circuit noise; phase locked loops; phase noise; prescalers; voltage-controlled oscillators; 0.18 micron; 1.8 V; 14 GHz; 31 mA; 4.9 mA; 8.1 mA; 9.7 to 10.4 GHz; MOS current mode logic clocked D Mp-flop; PLL; PLL output phase noise; VCO tuning range; current consumption; dual-modulus prescaler; dual-modulus scheme; foundry CMOS process; high-speed operation; maximum operating frequency; monolithic CMOS phase-locked loop application; phase noise; secondary feedback; signal swing; synchronous 4/5 divider; synchronous counter; voltage-controlled oscillator; CMOS logic circuits; CMOS process; Clocks; Counting circuits; Feedback loop; Flip-flops; Foundries; Phase locked loops; Phase noise; Voltage-controlled oscillators;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2003.821918