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
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

Références

Rev Sci Instrum. 2016 Oct;87(10):105120
pubmed: 27802746
Int J Bioprint. 2019 Jul 03;5(2):192
pubmed: 32596534
Molecules. 2020 Nov 10;25(22):
pubmed: 33182534
Lab Chip. 2009 Dec 21;9(24):3489-94
pubmed: 20024027
Lab Chip. 2017 Jan 31;17(3):362-381
pubmed: 28009883
Ann Biomed Eng. 2010 Jan;38(1):21-32
pubmed: 19898937
Trends Biotechnol. 2017 May;35(5):383-392
pubmed: 28162773
Annu Int Conf IEEE Eng Med Biol Soc. 2007;2007:6323-6
pubmed: 18003467
J Chem Educ. 2021 Feb 9;98(2):439-444
pubmed: 33583951
Micromachines (Basel). 2018 Sep 12;9(9):
pubmed: 30424394
Adv Sci (Weinh). 2015 Jul 16;2(9):1500125
pubmed: 27709002
Biosens Bioelectron. 2021 Mar 1;175:112849
pubmed: 33250333
Biosens Bioelectron. 2021 Jul 15;184:113238
pubmed: 33878594
Int J Bioprint. 2019 Jul 01;5(2):202
pubmed: 32596537
Lab Chip. 2010 Jun 7;10(11):1365-86
pubmed: 20369211
Lab Chip. 2016 May 24;16(11):1993-2013
pubmed: 27146365
Lab Chip. 2008 Jan;8(1):170-2
pubmed: 18094775
Adv Mater. 2011 Mar 18;23(11):1311-29
pubmed: 21400590
Biosensors (Basel). 2020 Sep 24;10(10):
pubmed: 32987809
Anal Chem. 2003 Aug 1;75(15):3853-8
pubmed: 14572053
Lab Chip. 2010 Oct 7;10(19):2519-26
pubmed: 20607174
J Biomech. 2016 Jul 26;49(11):2280-2292
pubmed: 26671220
Lab Chip. 2005 Sep;5(9):974-8
pubmed: 16100582
Anal Chem. 1998 Dec 1;70(23):4974-84
pubmed: 21644679

Auteurs

Benjamin Heidt (B)

Sensor Engineering Department, Faculty of Science and Engineering, Maastricht University, P.O. Box 616, 6200 MD Maastricht, The Netherlands.

Renato Rogosic (R)

Sensor Engineering Department, Faculty of Science and Engineering, Maastricht University, P.O. Box 616, 6200 MD Maastricht, The Netherlands.

Nils Leoné (N)

Aachen-Maastricht Institute for Biobased Materials, Faculty of Science and Engineering, Maastricht University, P.O. Box 616, 6200 MD Maastricht, The Netherlands.

Eduardo J S Brás (EJS)

Department of Biomedical Engineering, Faculty of Medicine, Eberhard Karls University Tübingen, 72770 Tübingen, Germany.

Thomas J Cleij (TJ)

Sensor Engineering Department, Faculty of Science and Engineering, Maastricht University, P.O. Box 616, 6200 MD Maastricht, The Netherlands.

Jules A W Harings (JAW)

Aachen-Maastricht Institute for Biobased Materials, Faculty of Science and Engineering, Maastricht University, P.O. Box 616, 6200 MD Maastricht, The Netherlands.

Hanne Diliën (H)

Sensor Engineering Department, Faculty of Science and Engineering, Maastricht University, P.O. Box 616, 6200 MD Maastricht, The Netherlands.

Kasper Eersels (K)

Sensor Engineering Department, Faculty of Science and Engineering, Maastricht University, P.O. Box 616, 6200 MD Maastricht, The Netherlands.

Bart van Grinsven (B)

Sensor Engineering Department, Faculty of Science and Engineering, Maastricht University, P.O. Box 616, 6200 MD Maastricht, The Netherlands.

Articles similaires

Semiconductors Photosynthesis Polymers Carbon Dioxide Bacteria
Animals Huntington Disease Mitochondria Neurons Mice

Characterization of 3D printed composite for final dental restorations.

Lucas Eigi Borges Tanaka, Camila da Silva Rodrigues, Manassés Tércio Vieira Grangeiro et al.
1.00
Composite Resins Materials Testing Printing, Three-Dimensional Surface Properties Flexural Strength

Personalized bioceramic grafts for craniomaxillofacial bone regeneration.

Ana Beatriz G de Carvalho, Maedeh Rahimnejad, Rodrigo L M S Oliveira et al.
1.00
Humans Bone Regeneration Ceramics Printing, Three-Dimensional Tissue Scaffolds

Classifications MeSH