DocumentCode
1323879
Title
A 2.4-GHz Energy-Efficient Transmitter for Wireless Medical Applications
Author
Qi Zhang ; Peng Feng ; Zhiqing Geng ; Xiaozhou Yan ; Nanjian Wu
Author_Institution
Inst. of Semicond., Chinese Acad. of Sci., Beijing, China
Volume
5
Issue
1
fYear
2011
Firstpage
39
Lastpage
47
Abstract
A 2.4-GHz energy-efficient transmitter (TX) for wireless medical applications is presented in this paper. It consists of four blocks: a phase-locked loop (PLL) synthesizer with a direct frequency presetting technique, a class-B power amplifier, a digital processor, and nonvolatile memory (NVM). The frequency presetting technique can accurately preset the carrier frequency of the voltage-controlled oscillator and reduce the lock-in time of the PLL synthesizer, further increasing the data rate of communication with low power consumption. The digital processor automatically compensates preset frequency variation with process, voltage, and temperature. The NVM stores the presetting signals and calibration data so that the TX can avoid the repetitive calibration process and save the energy in practical applications. The design is implemented in 0.18- μm radio-frequency complementary metal-oxide semiconductor process and the active area is 1.3 mm 2. The TX achieves 0-dBm output power with a maximum data rate of 4 Mb/s/2 Mb/s and dissipates 2.7-mA/5.4-mA current from a 1.8-V power supply for on-off keying/frequency-shift keying modulation, respectively. The corresponding energy efficiency is 1.2 nJ/b·mW and 4.8 nJ/b· mW when normalized to the transmitting power.
Keywords
CMOS integrated circuits; amplitude shift keying; biomedical equipment; body sensor networks; data communication; digital signal processing chips; frequency shift keying; phase locked loops; power amplifiers; random-access storage; transmitters; NVM; PLL synthesizer lock in time; bit rate 2 Mbit/s; bit rate 4 Mbit/s; class B power amplifier; complementary metal oxide semiconductor; current 2.7 mA; current 5.4 mA; data communication rate; digital processor; direct frequency presetting technique; energy efficient transmitter; frequency 2.4 GHz; frequency shift keying modulation; low power consumption; nonvolatile memory; on-off keying modulation; phase locked loop; radiofrequency CMOS process; voltage 1.8 V; voltage controlled oscillator carrier frequency; wireless medical applications; Calibration; Frequency shift keying; Time frequency analysis; Voltage-controlled oscillators; Autocalibration; energy efficient; frequency presetting technique; nonvolatile memory (NVM);
fLanguage
English
Journal_Title
Biomedical Circuits and Systems, IEEE Transactions on
Publisher
ieee
ISSN
1932-4545
Type
jour
DOI
10.1109/TBCAS.2010.2064772
Filename
5570954
Link To Document