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Bubble dynamics and speed of jets for needle-free injections produced by thermocavitation

SIGNIFICANCE: The number of injections administered has increased dramatically worldwide due to vaccination campaigns following the COVID-19 pandemic, creating a problem of disposing of syringes and needles. Accidental needle sticks occur among medical and cleaning staff, exposing them to highly con...

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Autores principales: González-Sierra, Nancy Elizabeth, Perez-Corte, José Manuel, Padilla-Martinez, Juan Pablo, Cruz-Vanegas, Samuel, Bonfadini, Silvio, Storti, Filippo, Criante, Luigino, Ramos-García, Rubén
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Society of Photo-Optical Instrumentation Engineers 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10362157/
https://www.ncbi.nlm.nih.gov/pubmed/37484974
http://dx.doi.org/10.1117/1.JBO.28.7.075004
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author González-Sierra, Nancy Elizabeth
Perez-Corte, José Manuel
Padilla-Martinez, Juan Pablo
Cruz-Vanegas, Samuel
Bonfadini, Silvio
Storti, Filippo
Criante, Luigino
Ramos-García, Rubén
author_facet González-Sierra, Nancy Elizabeth
Perez-Corte, José Manuel
Padilla-Martinez, Juan Pablo
Cruz-Vanegas, Samuel
Bonfadini, Silvio
Storti, Filippo
Criante, Luigino
Ramos-García, Rubén
author_sort González-Sierra, Nancy Elizabeth
collection PubMed
description SIGNIFICANCE: The number of injections administered has increased dramatically worldwide due to vaccination campaigns following the COVID-19 pandemic, creating a problem of disposing of syringes and needles. Accidental needle sticks occur among medical and cleaning staff, exposing them to highly contagious diseases, such as hepatitis and human immunodeficiency virus. In addition, needle phobia may prevent adequate treatment. To overcome these problems, we propose a needle-free injector based on thermocavitation. AIM: Experimentally study the dynamics of vapor bubbles produced by thermocavitation inside a fully buried 3D fused silica chamber and the resulting high-speed jets emerging through a small nozzle made at the top of it. The injected volume can range from [Formula: see text] to [Formula: see text] per shot. We also demonstrate that these jets have the ability to penetrate agar skin phantoms and ex-vivo porcine skin. APPROACH: Through the use of a high-speed camera, the dynamics of liquid jets ejected from a microfluidic device were studied. Thermocavitation bubbles are generated by a continuous wave laser (1064 nm). The 3D chamber was fabricated by ultra-short pulse laser-assisted chemical etching. Penetration tests are conducted using agar gels (1%, 1.25%, 1.5%, 1.75%, and 2% concentrations) and porcine tissue as a model for human skin. RESULT: High-speed camera video analysis showed that the average maximum bubble wall speed is about 10 to 25 m/s for almost any combination of pump laser parameters; however, a clever design of the chamber and nozzle enables one to obtain jets with an average speed of [Formula: see text]. The expelled volume per shot (0.1 to [Formula: see text]) can be controlled by the pump laser intensity. Our injector can deliver up to 20 shots before chamber refill. Penetration of jets into agar of different concentrations and ex-vivo porcine skin is demonstrated. CONCLUSIONS: The needle-free injectors based on thermocavitation may hold promise for commercial development, due to their cost and compactness.
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spelling pubmed-103621572023-07-23 Bubble dynamics and speed of jets for needle-free injections produced by thermocavitation González-Sierra, Nancy Elizabeth Perez-Corte, José Manuel Padilla-Martinez, Juan Pablo Cruz-Vanegas, Samuel Bonfadini, Silvio Storti, Filippo Criante, Luigino Ramos-García, Rubén J Biomed Opt General SIGNIFICANCE: The number of injections administered has increased dramatically worldwide due to vaccination campaigns following the COVID-19 pandemic, creating a problem of disposing of syringes and needles. Accidental needle sticks occur among medical and cleaning staff, exposing them to highly contagious diseases, such as hepatitis and human immunodeficiency virus. In addition, needle phobia may prevent adequate treatment. To overcome these problems, we propose a needle-free injector based on thermocavitation. AIM: Experimentally study the dynamics of vapor bubbles produced by thermocavitation inside a fully buried 3D fused silica chamber and the resulting high-speed jets emerging through a small nozzle made at the top of it. The injected volume can range from [Formula: see text] to [Formula: see text] per shot. We also demonstrate that these jets have the ability to penetrate agar skin phantoms and ex-vivo porcine skin. APPROACH: Through the use of a high-speed camera, the dynamics of liquid jets ejected from a microfluidic device were studied. Thermocavitation bubbles are generated by a continuous wave laser (1064 nm). The 3D chamber was fabricated by ultra-short pulse laser-assisted chemical etching. Penetration tests are conducted using agar gels (1%, 1.25%, 1.5%, 1.75%, and 2% concentrations) and porcine tissue as a model for human skin. RESULT: High-speed camera video analysis showed that the average maximum bubble wall speed is about 10 to 25 m/s for almost any combination of pump laser parameters; however, a clever design of the chamber and nozzle enables one to obtain jets with an average speed of [Formula: see text]. The expelled volume per shot (0.1 to [Formula: see text]) can be controlled by the pump laser intensity. Our injector can deliver up to 20 shots before chamber refill. Penetration of jets into agar of different concentrations and ex-vivo porcine skin is demonstrated. CONCLUSIONS: The needle-free injectors based on thermocavitation may hold promise for commercial development, due to their cost and compactness. Society of Photo-Optical Instrumentation Engineers 2023-07-21 2023-07 /pmc/articles/PMC10362157/ /pubmed/37484974 http://dx.doi.org/10.1117/1.JBO.28.7.075004 Text en © 2023 The Authors https://creativecommons.org/licenses/by/4.0/Published by SPIE under a Creative Commons Attribution 4.0 International License. Distribution or reproduction of this work in whole or in part requires full attribution of the original publication, including its DOI.
spellingShingle General
González-Sierra, Nancy Elizabeth
Perez-Corte, José Manuel
Padilla-Martinez, Juan Pablo
Cruz-Vanegas, Samuel
Bonfadini, Silvio
Storti, Filippo
Criante, Luigino
Ramos-García, Rubén
Bubble dynamics and speed of jets for needle-free injections produced by thermocavitation
title Bubble dynamics and speed of jets for needle-free injections produced by thermocavitation
title_full Bubble dynamics and speed of jets for needle-free injections produced by thermocavitation
title_fullStr Bubble dynamics and speed of jets for needle-free injections produced by thermocavitation
title_full_unstemmed Bubble dynamics and speed of jets for needle-free injections produced by thermocavitation
title_short Bubble dynamics and speed of jets for needle-free injections produced by thermocavitation
title_sort bubble dynamics and speed of jets for needle-free injections produced by thermocavitation
topic General
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10362157/
https://www.ncbi.nlm.nih.gov/pubmed/37484974
http://dx.doi.org/10.1117/1.JBO.28.7.075004
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