Title :
Low Power VCO and Mixer for Computing Miracast and Mobile Bluetooth Applications
Author :
Wen-Cheng Lai ; Jhin-Fang Huang ; Change-Ming Hsu ; Pi-Gi Yang
Author_Institution :
Dept. of Electron. Eng., Nat. Taiwan Univ. of Sci. & Technol., Taipei, Taiwan
Abstract :
A new fully integrated, low power voltage controlled oscillator and divider for Bluetooth and Miracast application are presented. The power consumption use charge recycling technique to reduced current from the divider. This circuit was implemented in 0.18 um CMOS technique with 1.8 V supply voltage. The broadband CMOS double-balance mixer for RF receiver is presented. The broadband mixer is fabricated with the 0.18 μm CMOS process. Measurement of the CMOS mixer is performed; input return loss is higher than 8.5 dB. For VCO with divider measured results indicate the frequency is tunable from 1.91 GHz to 2.07 GHz, corresponding to 13 %. The phase noise of the VCO operating at 2 GHz is -116.8 dBc/Hz at 1 MHz offset, while the VCO draws 2.61 mA and 4.7 mW consumption at frequency band from a 1.8 V supply. Including pads. The output power is -15.85 dBm with 50- O termination at the frequency o f of 2 GHz and the calculated FOM (figure of merit) is -176.
Keywords :
Bluetooth; CMOS logic circuits; dividing circuits; integrated circuit measurement; integrated circuit noise; low-power electronics; mixers (circuits); phase noise; power consumption; voltage-controlled oscillators; CMOS mixer measurement; CMOS process; CMOS technique; FOM; Miracast application; RF receiver; broadband CMOS double-balance mixer; charge recycling technique; current reduction; divider; figure of merit; frequency 1.91 GHz to 2.07 GHz; low power VCO; low power voltage controlled oscillator; mobile Bluetooth applications; phase noise; power consumption; return loss; size 0.18 mum; voltage 1.8 V; Frequency measurement; Mixers; Phase noise; Power demand; Voltage-controlled oscillators; VCO; voltage-controlled oscillator; low power; Bluetooth; divider; charge-injection;
Conference_Titel :
Cyber-Enabled Distributed Computing and Knowledge Discovery (CyberC), 2014 International Conference on
Conference_Location :
Shanghai
Print_ISBN :
978-1-4799-6235-8
DOI :
10.1109/CyberC.2014.91