DocumentCode :
2953903
Title :
Ultra-fast and high resolution NEMS thermal detector based on a nano-air-gap piezoelectric resonant structure
Author :
Yu Hui ; Rinaldi, Matteo
Author_Institution :
Dept. Electr. & Comput. Eng., Northeastern Univ., Boston, MA, USA
fYear :
2012
fDate :
28-31 Oct. 2012
Firstpage :
1
Lastpage :
4
Abstract :
This paper presents the theoretical modeling and experimental verification of an innovative Nano Electro Mechanical System (NEMS) technology suitable for the implementation of ultra-fast and high resolution un-cooled thermal detectors. Fundamental challenges associated to the implementation of mechanically resonant thermal detectors are overcome with the introduction of an innovative technology platform in which a temperature sensitive Aluminum Nitride (AlN) nano-plate resonator and a monolithically integrated micromachined suspended heat absorbing element are perfectly overlapped but separated by a sub-micron air gap. By placing the absorbing element outside the body of the resonator (but suspended over it) the electromechanical performance of the resonant device is not affected by the absorbing element and the material employed to implement it (quality factor, Q≈1800 and electromechanical coupling coefficient, kt2≈1%) enabling the use of a compact and low-power self-sustained oscillator circuit as direct frequency readout. At the same time, efficient and quick heat transfer from the absorbing element to the nanomechanical resonant device is achieved by minimizing the air gap between them. The detection capabilities of this first prototype were tested using an integrated resistive heat source in lieu of an absorber. Power level as low as 655 nW was readily detected and a limit of detection of 48 nW was experimentally extracted. In addition a thermal time constant of ~ 60 μs was predicted for this prototype through finite element simulation.
Keywords :
aluminium compounds; crystal resonators; finite element analysis; heat transfer; micromachining; micromechanical resonators; nanosensors; oscillators; temperature sensors; AlN; absorbing element; compact self-sustained oscillator circuit; electromechanical coupling coefficient; electromechanical performance; finite element simulation; heat transfer; high resolution NEMS thermal detector; high resolution uncooled thermal detectors; integrated resistive heat source; low-power self-sustained oscillator circuit; mechanically resonant thermal detectors; monolithically integrated micromachined suspended heat absorbing element; nanoair-gap piezoelectric resonant structure; nanoelectromechanical system technology; nanomechanical resonant device; power 48 nW; power 655 nW; resonant device; submicron air gap; temperature sensitive aluminum nitride nanoplate resonator; thermal time constant; time 60 mus; ultrafast NEMS thermal detector; ultrafast uncooled thermal detectors; Detectors; Finite element methods; Frequency measurement; Heating; Nanoelectromechanical systems; Oscillators; Resonant frequency;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Sensors, 2012 IEEE
Conference_Location :
Taipei
ISSN :
1930-0395
Print_ISBN :
978-1-4577-1766-6
Electronic_ISBN :
1930-0395
Type :
conf
DOI :
10.1109/ICSENS.2012.6411594
Filename :
6411594
Link To Document :
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