DocumentCode
2939869
Title
A 3.4-mW 54.24-Mbps burst-mode injection-locked CMOS FSK transmitter
Author
Chen, Zhiming ; Cheng, Kuang-Wei ; Zheng, Yuanjin ; Je, Minkyu
Author_Institution
Inst. of Microelectron., A*STAR (Agency for Sci., Technol. & Res.), Singapore, Singapore
fYear
2011
fDate
14-16 Nov. 2011
Firstpage
289
Lastpage
292
Abstract
A burst-mode frequency-shift keying (FSK) transmitter is presented using injection locking technique for wireless neural signal recording. An initial single current pulse is injected to the LC tank to start up the oscillator quickly and, more importantly, to set the phase of the free-running oscillation at known value. We prove that the free-running oscillation phase is linearly related to the logarithm of the initial current pulse magnitude. With the free-running oscillation phase fixed, a gated reference signal can be injected at the optimum timing to achieve fast settling and consequently realize the high-data-rate burst-mode FSK transmission. The duty cycle of the reference signal is controlled to be 33% to reduce the required reference signal power by 73% approximately. With burst-mode operation and direct modulation by changing the self-resonance frequency of the oscillator, low power consumption and high energy efficiency is achieved. The transmitter is implemented in a 0.18-μm CMOS technology. It achieves a maximum data rate of 54.24 Mbps while consuming 3.4 mW from a 1.8-V supply, resulting in the high energy efficiency of 62 pJ/bit.
Keywords
CMOS integrated circuits; frequency shift keying; injection locked oscillators; medical signal processing; radio transmitters; LC tank; bit rate 54.24 Mbit/s; burst-mode injection-locked CMOS FSK transmitter; burst-mode injection-locked CMOS frequency-shift keying transmitter; energy efficiency; free-running oscillation phase; initial current pulse magnitude; initial single current pulse; maximum data rate; power 3.4 mW; power consumption; self-resonance frequency oscillator; signal power reference; size 0.18 mum; voltage 1.8 V; wireless neural signal recording; Frequency shift keying; Harmonic analysis; Oscillators; Power demand; Transmitters; Wireless communication;
fLanguage
English
Publisher
ieee
Conference_Titel
Solid State Circuits Conference (A-SSCC), 2011 IEEE Asian
Conference_Location
Jeju
Print_ISBN
978-1-4577-1784-0
Type
conf
DOI
10.1109/ASSCC.2011.6123568
Filename
6123568
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