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Modeling of Paper-Based Bi-Material Cantilever Actuator for Microfluidic Biosensors

This research explores the dynamics of a fluidically loaded Bi-Material cantilever (B-MaC), a critical component of μPADs (microfluidic paper-based analytical devices) used in point-of-care diagnostics. Constructed from Scotch Tape and Whatman Grade 41 filter paper strips, the B-MaC’s behavior under...

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Autores principales: Kumar, Ashutosh, Heidari-Bafroui, Hojat, Rahmani, Nassim, Anagnostopoulos, Constantine, Faghri, Mohammad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10296547/
https://www.ncbi.nlm.nih.gov/pubmed/37366945
http://dx.doi.org/10.3390/bios13060580
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author Kumar, Ashutosh
Heidari-Bafroui, Hojat
Rahmani, Nassim
Anagnostopoulos, Constantine
Faghri, Mohammad
author_facet Kumar, Ashutosh
Heidari-Bafroui, Hojat
Rahmani, Nassim
Anagnostopoulos, Constantine
Faghri, Mohammad
author_sort Kumar, Ashutosh
collection PubMed
description This research explores the dynamics of a fluidically loaded Bi-Material cantilever (B-MaC), a critical component of μPADs (microfluidic paper-based analytical devices) used in point-of-care diagnostics. Constructed from Scotch Tape and Whatman Grade 41 filter paper strips, the B-MaC’s behavior under fluid imbibition is examined. A capillary fluid flow model is formulated for the B-MaC, adhering to the Lucas–Washburn (LW) equation, and supported by empirical data. This paper further investigates the stress–strain relationship to estimate the modulus of the B-MaC at various saturation levels and to predict the behavior of the fluidically loaded cantilever. The study shows that the Young’s modulus of Whatman Grade 41 filter paper drastically decreases to approximately 20 MPa (about 7% of its dry-state value) upon full saturation. This significant decrease in flexural rigidity, in conjunction with the hygroexpansive strain and coefficient of hygroexpansion (empirically deduced to be 0.008), is essential in determining the B-MaC’s deflection. The proposed moderate deflection formulation effectively predicts the B-MaC’s behavior under fluidic loading, emphasizing the measurement of maximum (tip) deflection using interfacial boundary conditions for the B-MaC’s wet and dry regions. This knowledge of tip deflection will prove instrumental in optimizing the design parameters of B-MaCs.
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spelling pubmed-102965472023-06-28 Modeling of Paper-Based Bi-Material Cantilever Actuator for Microfluidic Biosensors Kumar, Ashutosh Heidari-Bafroui, Hojat Rahmani, Nassim Anagnostopoulos, Constantine Faghri, Mohammad Biosensors (Basel) Article This research explores the dynamics of a fluidically loaded Bi-Material cantilever (B-MaC), a critical component of μPADs (microfluidic paper-based analytical devices) used in point-of-care diagnostics. Constructed from Scotch Tape and Whatman Grade 41 filter paper strips, the B-MaC’s behavior under fluid imbibition is examined. A capillary fluid flow model is formulated for the B-MaC, adhering to the Lucas–Washburn (LW) equation, and supported by empirical data. This paper further investigates the stress–strain relationship to estimate the modulus of the B-MaC at various saturation levels and to predict the behavior of the fluidically loaded cantilever. The study shows that the Young’s modulus of Whatman Grade 41 filter paper drastically decreases to approximately 20 MPa (about 7% of its dry-state value) upon full saturation. This significant decrease in flexural rigidity, in conjunction with the hygroexpansive strain and coefficient of hygroexpansion (empirically deduced to be 0.008), is essential in determining the B-MaC’s deflection. The proposed moderate deflection formulation effectively predicts the B-MaC’s behavior under fluidic loading, emphasizing the measurement of maximum (tip) deflection using interfacial boundary conditions for the B-MaC’s wet and dry regions. This knowledge of tip deflection will prove instrumental in optimizing the design parameters of B-MaCs. MDPI 2023-05-26 /pmc/articles/PMC10296547/ /pubmed/37366945 http://dx.doi.org/10.3390/bios13060580 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kumar, Ashutosh
Heidari-Bafroui, Hojat
Rahmani, Nassim
Anagnostopoulos, Constantine
Faghri, Mohammad
Modeling of Paper-Based Bi-Material Cantilever Actuator for Microfluidic Biosensors
title Modeling of Paper-Based Bi-Material Cantilever Actuator for Microfluidic Biosensors
title_full Modeling of Paper-Based Bi-Material Cantilever Actuator for Microfluidic Biosensors
title_fullStr Modeling of Paper-Based Bi-Material Cantilever Actuator for Microfluidic Biosensors
title_full_unstemmed Modeling of Paper-Based Bi-Material Cantilever Actuator for Microfluidic Biosensors
title_short Modeling of Paper-Based Bi-Material Cantilever Actuator for Microfluidic Biosensors
title_sort modeling of paper-based bi-material cantilever actuator for microfluidic biosensors
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10296547/
https://www.ncbi.nlm.nih.gov/pubmed/37366945
http://dx.doi.org/10.3390/bios13060580
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