DocumentCode
5146
Title
An Energy Autonomous 400 MHz Active Wireless SAW Temperature Sensor Powered by Vibration Energy Harvesting
Author
Yao Zhu ; Yuanjin Zheng ; Yuan Gao ; Made, Darmayuda I. ; Chengliang Sun ; Minkyu Je ; Gu, Alex Yuandong
Author_Institution
Sch. of Electr. & Electron. Eng., Nanyang Technol. Univ., Singapore, Singapore
Volume
62
Issue
4
fYear
2015
fDate
Apr-15
Firstpage
976
Lastpage
985
Abstract
An energy autonomous active wireless surface acoustic wave (SAW) temperature sensor system is presented in this paper. The proposed system adopts direct temperature to frequency conversion using a lithium niobate SAW resonator for both temperature sensing and high-Q resonator core in a cross-coupled RF oscillator. This arrangement simplifies the temperature sensor readout circuit design and reduces the overall system power consumption. A power conditioning circuit based on buck-boost converter is utilized to provide high efficiency power extraction from piezoelectric energy harvester (PEH) and dynamic system power control. The SAW resonator is fabricated in-house using a two-step lithography procedure while the RF oscillator as well as the PEH power conditioning circuit are implemented in standard 65-nm and 0.18- μm CMOS processes respectively. The measured RF transmitter output power is -15 dBm with a phase noise of -99.4 dBc/Hz at 1 kHz offset, achieving a figure of merit (FOM) of -217.6 dB. The measured temperature sensing accuracy is ±0.6 °C in -40 °C to 120 °C range. Fully powered by a vibration PEH, the proposed energy autonomous system has a self-startup voltage of 0.7 V and consumes an average power of 61.5 μW.
Keywords
CMOS integrated circuits; energy harvesting; integrated circuit design; lithography; low-power electronics; phase noise; piezoelectric transducers; power control; power convertors; readout electronics; signal conditioning circuits; surface acoustic wave resonators; surface acoustic wave sensors; temperature sensors; vibrations; CMOS processes; PEH power conditioning circuit; SAW resonator; autonomous active wireless SAW temperature sensor system; buck-boost converter; cross-coupled RF oscillator; dynamic system power control; energy autonomous system; figure of; frequency 1 kHz; frequency 400 MHz; high-Q resonator core; lithography procedure; phase noise; piezoelectric energy harvester; power extraction; size 0.18 mum; size 65 nm; surface acoustic wave; temperature sensor readout circuit design; vibration PEH; vibration energy harvesting; voltage 0.7 V; Impedance; Oscillators; Radio frequency; Resonant frequency; Surface acoustic waves; Temperature sensors; Wireless communication; Energy autonomous; SAW; SAW oscillator; low power; power management; temperature sensor; vibration energy harvest; wireless;
fLanguage
English
Journal_Title
Circuits and Systems I: Regular Papers, IEEE Transactions on
Publisher
ieee
ISSN
1549-8328
Type
jour
DOI
10.1109/TCSI.2015.2402937
Filename
7070863
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