4.5 Article

Deriving acoustic properties for perfluoropentane droplets with viscoelastic cellulose nanofiber shell via numerical simulations

Journal

JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA
Volume 150, Issue 3, Pages 1750-1761

Publisher

ACOUSTICAL SOC AMER AMER INST PHYSICS
DOI: 10.1121/10.0006046

Keywords

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Funding

  1. China Scholarship Council

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This study demonstrates the superior performance of perfluoropentane droplets with cellulose nanofibers (CNF) shells as ultrasound contrast agents and drug delivery vehicles, and establishes a theoretical model and parameter study on their acoustic behavior. The results show that the shell strongly influences the acoustic behavior of the droplets, and the resonance frequency mainly depends on the initial gas cavity radius.
Perfluoropentane droplets with cellulose nanofibers (CNF) shells have demonstrated better stability and easier surface modification as ultrasound contrast agents and drug delivery vehicles. This paper presents a theoretical model assuming a four-phase state inverse antibubble, with the core filled with gas perfluoropentane surrounded by liquid perfluoropentane. A continuous, incompressible, and viscoelastic stabilizing layer separates the core from the surrounding water. A parametric study is performed to predict the frequency-dependent attenuation coefficient, the speed of sound, and the resonance frequency of the droplets which have a mean diameter of 2.47 +/- 0.95 mu m. Results reveal that the CNF-stabilized perfluoropentane droplets can be modeled in a Rayleigh-Plesset like equation. We conclude that the shell strongly influences the acoustic behavior of the droplets and the resonance frequency largely depends on the initial gas cavity radius. More specifically, the peak attenuation coefficient and peak-to-peak speed of sound decrease with increasing shear modulus, shear viscosity, and shell thickness, while they increase with increasing gas cavity radius and concentration. The resonance frequency increases as shear modulus and shell thickness increase, while it decreases as shear viscosity and gas cavity radius increase. It is worth mentioning that droplet concentration has no effect on the resonance frequency. (C) 2021 Acoustical Society of America.

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