DocumentCode
1364513
Title
Nested Metamaterials for Wireless Strain Sensing
Author
Melik, Rohat ; Unal, Emre ; Perkgoz, Nihan Kosku ; Santoni, Brandon ; Kamstock, Debra ; Puttlitz, Christian ; Demir, Hilmi Volkan
Author_Institution
Dept. of Electr. & Electron. Eng., Bilkent Univ., Ankara, Turkey
Volume
16
Issue
2
fYear
2010
Firstpage
450
Lastpage
458
Abstract
We designed, fabricated, and characterized metamaterial-based RF-microelectromechanical system (RF-MEMS) strain sensors that incorporate multiple split ring resonators (SRRs) in a compact nested architecture to measure strain telemetrically. We also showed biocompatibility of these strain sensors in an animal model. With these devices, our bioimplantable wireless metamaterial sensors are intended, to enable clinicians, to quantitatively evaluate the progression of long-bone fracture healing by monitoring the strain on the implantable fracture fixation hardware in real time. In operation, the transmission spectrum of the metamaterial sensor attached to the implantable fixture is changed when an external load is applied to the fixture, and from this change, the strain is recorded remotely. By employing telemetric characterizations, we reduced the operating frequency and enhanced the sensitivity of our novel nested SRR architecture compared to the conventional SRR structure. The nested SRR structure exhibited a higher sensitivity of 1.09 kHz/kgf operating at lower frequency compared to the classical SRR that demonstrated a sensitivity of 0.72 kHz/kgf. Using soft tissue medium, we achieved the best sensitivity level of 4.00 kHz/kgf with our nested SRR sensor. Ultimately, the laboratory characterization and in vivo biocompatibility studies support further development and characterization of a fracture healing system based on implantable nested SRR.
Keywords
metamaterials; strain sensors; wireless sensor networks; RF-microelectromechanical system; biocompatibility; bioimplantable wireless metamaterial; compact nested architecture; nested metamaterials; split ring resonators; strain sensors; wireless strain sensing; Biocompatibility; metamaterial; nested SRR; remote sensing; resonance frequency; sensitivity; split ring resonator (SRR); strain; telemetric;
fLanguage
English
Journal_Title
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
1077-260X
Type
jour
DOI
10.1109/JSTQE.2009.2033391
Filename
5361333
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