Literature DB >> 24944429

RF-MEMS Load Sensors with Enhanced Q-factor and Sensitivity in a Suspended Architecture.

Rohat Melik1, Emre Unal1, Nihan Kosku Perkgoz1, Christian Puttlitz2, Hilmi Volkan Demir1.   

Abstract

In this paper, we present and demonstrate RF-MEMS load sensors designed and fabricated in a suspended architecture that increases their quality-factor (Q-factor), accompanied with an increased resonance frequency shift under load. The suspended architecture is obtained by removing silicon under the sensor. We compare two sensors that consist of 195 μm × 195 μm resonators, where all of the resonator features are of equal dimensions, but one's substrate is partially removed (suspended architecture) and the other's is not (planar architecture). The single suspended device has a resonance of 15.18 GHz with 102.06 Q-factor whereas the single planar device has the resonance at 15.01 GHz and an associated Q-factor of 93.81. For the single planar device, we measured a resonance frequency shift of 430 MHz with 3920 N of applied load, while we achieved a 780 MHz frequency shift in the single suspended device. In the planar triplet configuration (with three devices placed side by side on the same chip, with the two outmost ones serving as the receiver and the transmitter), we observed a 220 MHz frequency shift with 3920 N of applied load while we obtained a 340 MHz frequency shift in the suspended triplet device with 3920 N load applied. Thus, the single planar device exhibited a sensitivity level of 0.1097 MHz/N while the single suspended device led to an improved sensitivity of 0.1990 MHz/N. Similarly, with the planar triplet device having a sensitivity of 0.0561 MHz/N, the suspended triplet device yielded an enhanced sensitivity of 0.0867 MHz/N.

Entities:  

Keywords:  Fabrication; IC; RF-MEMS; bio-implant; quality-factor; resonance frequency shift

Year:  2011        PMID: 24944429      PMCID: PMC4059034          DOI: 10.1016/j.mee.2010.10.041

Source DB:  PubMed          Journal:  Microelectron Eng        ISSN: 0167-9317            Impact factor:   2.523


  1 in total

1.  Functional load of plates in fracture fixation in vivo and its correlate in bone healing.

Authors:  K Stoffel; K Klaue; S M Perren
Journal:  Injury       Date:  2000-05       Impact factor: 2.586

  1 in total
  3 in total

1.  Utilizing Multiple BioMEMS Sensors to Monitor Orthopaedic Strain and Predict Bone Fracture Healing.

Authors:  Jakob G Wolynski; Conor J Sutherland; Hilmi Volkan Demir; Emre Unal; Akbar Alipour; Christian M Puttlitz; Kirk C McGilvray
Journal:  J Orthop Res       Date:  2019-05-17       Impact factor: 3.494

2.  Diagnostic prediction of ovine fracture healing outcomes via a novel multi-location direct electromagnetic coupling antenna.

Authors:  Jakob G Wolynski; Kevin M Labus; Jeremiah T Easley; Branislav M Notaroš; Milan M Ilić; Christian M Puttlitz; Kirk C McGilvray
Journal:  Ann Transl Med       Date:  2021-08

3.  Direct electromagnetic coupling to determine diagnostic bone fracture stiffness.

Authors:  Jakob G Wolynski; Milan M Ilić; Kevin M Labus; Branislav M Notaroš; Christian M Puttlitz; Kirk C McGilvray
Journal:  Ann Transl Med       Date:  2022-05
  3 in total

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