Issue 21, 2014

Microfluidic serpentine antennas with designed mechanical tunability

Abstract

This paper describes the design and characterization of microfluidic serpentine antennas with reversible stretchability and designed mechanical frequency modulation (FM). The microfluidic antennas are designed based on the Poisson's ratio of the elastomer in which the liquid alloy antenna is embedded, to controllably decrease, stabilize or increase its resonance frequency when being stretched. Finite element modelling was used in combination with experimental verification to investigate the effects of substrate dimensions and antenna aspect ratios on the FM sensitivity to uniaxial stretching. It could be designed within the range of −1.2 to 0.6 GHz per 100% stretch. When the aspect ratio of the serpentine antenna is between 1.0 and 1.5, the resonance frequency is stable under stretching, bending, and twisting. The presented microfluidic serpentine antenna design could be utilized in the field of wireless mobile communication for the design of wearable electronics, with a stable resonance frequency under dynamic applied strain up to 50%.

Graphical abstract: Microfluidic serpentine antennas with designed mechanical tunability

Article information

Article type
Paper
Submitted
30 Jun 2014
Accepted
28 Jul 2014
First published
31 Jul 2014

Lab Chip, 2014,14, 4205-4212

Author version available

Microfluidic serpentine antennas with designed mechanical tunability

Y. Huang, Y. Wang, L. Xiao, H. Liu, W. Dong and Z. Yin, Lab Chip, 2014, 14, 4205 DOI: 10.1039/C4LC00762J

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