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Article

A Rapid Method to Noninvasively Measure the Viscoelastic Properties of Synthetic Polymers Using Mechanical Vibrations and Photonics

by
Frederick H. Silver
1,2,*,
Michael Gonzalez-Mercedes
2 and
Arielle Mesica
2
1
Department of Pathology and Laboratory Medicine, Robert Wood Johnson Medical School, Rutgers, The State University of New Jersey, Piscataway, NJ 08854, USA
2
OptoVibronex, LLC., Ben Franklin Tech Partners, Bethlehem, PA 18015, USA
*
Author to whom correspondence should be addressed.
Photonics 2022, 9(12), 925; https://doi.org/10.3390/photonics9120925
Submission received: 20 October 2022 / Revised: 16 November 2022 / Accepted: 26 November 2022 / Published: 1 December 2022
(This article belongs to the Special Issue Recent Advances in Optical Coherence Tomography)

Abstract

Noninvasive measurement of the viscoelastic properties of both natural and synthetic polymers is important for the analysis of implant design and performance as well as in industrial material development. In this study, we used vibrational optical coherence tomography (VOCT) to compare the elastic and viscoelastic properties of silicone polymers with standard tensile stress–strain measurements. VOCT uses acoustic vibrations and infrared light to measure the resonant frequency of viscoelastic materials. The elastic modulus was calculated from the in-phase deformation of the material at fixed frequencies using an empirical calibration curve. Viscous loss was measured after pulsing the samples based on the ratio of mechanovibrational peak widths to heights. The results showed that the optimal cure time and modulus values obtained using VOCT were like those obtained using conventional tensile testing. VOCT could capture results that were comparable to conventional testing while not destroying the material, suggesting its usefulness for in vivo and in situ measurements as well as for early quality control environments during end-use application and fabrication experiments. We conclude that VOCT is a new technique that is comparable to conventional testing for noninvasively and nondestructively measuring the viscoelastic properties of polymers.
Keywords: silicone; viscoelasticity; elastic modulus; viscous loss; tensile testing; infrared light; acoustic vibrations; vibrometry silicone; viscoelasticity; elastic modulus; viscous loss; tensile testing; infrared light; acoustic vibrations; vibrometry

Share and Cite

MDPI and ACS Style

Silver, F.H.; Gonzalez-Mercedes, M.; Mesica, A. A Rapid Method to Noninvasively Measure the Viscoelastic Properties of Synthetic Polymers Using Mechanical Vibrations and Photonics. Photonics 2022, 9, 925. https://doi.org/10.3390/photonics9120925

AMA Style

Silver FH, Gonzalez-Mercedes M, Mesica A. A Rapid Method to Noninvasively Measure the Viscoelastic Properties of Synthetic Polymers Using Mechanical Vibrations and Photonics. Photonics. 2022; 9(12):925. https://doi.org/10.3390/photonics9120925

Chicago/Turabian Style

Silver, Frederick H., Michael Gonzalez-Mercedes, and Arielle Mesica. 2022. "A Rapid Method to Noninvasively Measure the Viscoelastic Properties of Synthetic Polymers Using Mechanical Vibrations and Photonics" Photonics 9, no. 12: 925. https://doi.org/10.3390/photonics9120925

APA Style

Silver, F. H., Gonzalez-Mercedes, M., & Mesica, A. (2022). A Rapid Method to Noninvasively Measure the Viscoelastic Properties of Synthetic Polymers Using Mechanical Vibrations and Photonics. Photonics, 9(12), 925. https://doi.org/10.3390/photonics9120925

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