Topographical Vacuum Sealing of 3D-Printed Multiplanar Microfluidic Structures.
3D printing
TOVAS
microfluidics
topographical vacuum sealing
vacuum forming
Journal
Biosensors
ISSN: 2079-6374
Titre abrégé: Biosensors (Basel)
Pays: Switzerland
ID NLM: 101609191
Informations de publication
Date de publication:
15 Oct 2021
15 Oct 2021
Historique:
received:
14
09
2021
revised:
08
10
2021
accepted:
10
10
2021
entrez:
22
10
2021
pubmed:
23
10
2021
medline:
6
1
2022
Statut:
epublish
Résumé
We demonstrate a novel way of creating three-dimensional microfluidic channels capable of following complex topographies. To this end, substrates with open channels and different geometries were 3D-printed, and the open channels were consecutively closed with a thermoplastic using a low-resolution vacuum-forming approach. This process allows the sealing of channels that are located on the surface of complex multiplanar topographies, as the thermoplastic aligns with the surface-shape (the macrostructure) of the substrate, while the microchannels remain mostly free of thermoplastic as their small channel size resists thermoplastic inflow. This new process was analyzed for its capability to consistently close different substrate geometries, which showed reliable sealing of angles >90°. Furthermore, the thermoplastic intrusion into channels of different widths was quantified, showing a linear effect of channel width and percentage of thermoplastic intrusion; ranging from 43.76% for large channels with 2 mm width to only 5.33% for channels with 500 µm channel width. The challenging sealing of substrate 'valleys', which are created when two large protrusions are adjacent to each other, was investigated and the correlation between protrusion distance and height is shown. Lastly, we present three application examples: a serpentine mixer with channels spun around a cuboid, increasing the usable surface area; a cuvette-inspired flow cell for a 2-MXP biosensor based on molecular imprinted polymers, fitting inside a standard UV/Vis-Spectrophotometer; and an adapter system that can be manufactured by one-sided injection molding and is self-sealed before usage. These examples demonstrate how this novel technology can be used to easily adapt microfluidic circuits for application in biosensor platforms.
Identifiants
pubmed: 34677351
pii: bios11100395
doi: 10.3390/bios11100395
pmc: PMC8534087
pii:
doi:
Substances chimiques
Polymers
0
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Subventions
Organisme : SIA-NWO, RAAK-Pro
ID : SURFSCAN
Organisme : Interreg Va Euregio Meuse-Rhine
ID : Food Safety EMR
Organisme : SWOL
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