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Erschienen in: Microsystem Technologies 11/2012

01.11.2012 | Technical Paper

Polymer-based fabrication techniques for enclosed microchannels in biomedical applications

verfasst von: Annabel Krebs, Thorsten Knoll, Dominic Nußbaum, Thomas Velten

Erschienen in: Microsystem Technologies | Ausgabe 11/2012

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Abstract

Investigations and analyses of body fluids like serum or whole blood are essential tasks in biomedical research in order to understand and diagnose diseases, to conduct pharmacological tests or to culture cells. Therefore, microfluidic systems provide a favorable tool for processing fluid samples as they allow downscaling of sample volumes and handling of single fluid components such as cells or proteins. For this reason, we present simple fabrication techniques for microchannel systems using polymer materials only. The demonstrated fabrication procedures are based on combinations of acrylic glass and the photo resists SU-8 and PerMX3020. On the one hand, these materials are low-priced compared to conventional silicon or glass. On the other hand, they have not shown any interaction with blood or other cell suspensions within the frame of our study. Furthermore, their transparency guarantees an easy observability of all processes within the system. Depending on the channel dimensions, different adhesion bonding techniques for closing of the systems are applied, whereas the fluidic interfaces are included by mechanical drilling. Summing up, we provide complete fabrication processes for fluidic systems which are simpler and more cost-effective than conventional methods and yet cope with all essential requirements for microfluidic applications.

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Literatur
Zurück zum Zitat Altuna A, Gabriel G, de la Prida LM, Tijero M, Guimerá A, Berganzo J, Salido R, Villa R, Fernández LJ (2010) SU-8-based microneedles for in vitro neural applications. J Micromech Microeng 20:064014(6). doi:10.1088/0960-1317/20/6/064014 Altuna A, Gabriel G, de la Prida LM, Tijero M, Guimerá A, Berganzo J, Salido R, Villa R, Fernández LJ (2010) SU-8-based microneedles for in vitro neural applications. J Micromech Microeng 20:064014(6). doi:10.​1088/​0960-1317/​20/​6/​064014
Zurück zum Zitat Blanco FJ, Agirregabiria M, Garcia J, Berganzo J, Tijero M, Arroyo MT, Ruano JM, Aramburu I, Mayora K (2004) Novel three-dimensional embedded SU-8 microchannels fabricated using a low temperature full wafer adhesive bonding. J Micromech Microeng 14:1047–1056CrossRef Blanco FJ, Agirregabiria M, Garcia J, Berganzo J, Tijero M, Arroyo MT, Ruano JM, Aramburu I, Mayora K (2004) Novel three-dimensional embedded SU-8 microchannels fabricated using a low temperature full wafer adhesive bonding. J Micromech Microeng 14:1047–1056CrossRef
Zurück zum Zitat Bogunovic L, Anselmetti D, Regtmeier J (2011) Photolithographic fabrication of arbitrarily shaped SU-8 microparticles without sacrificial release layers. J Micromech Microeng 21:027003(5). doi:10.1088/0960-1317/21/2/027003 Bogunovic L, Anselmetti D, Regtmeier J (2011) Photolithographic fabrication of arbitrarily shaped SU-8 microparticles without sacrificial release layers. J Micromech Microeng 21:027003(5). doi:10.​1088/​0960-1317/​21/​2/​027003
Zurück zum Zitat Kotzar G, Freas M, Abel P, Fleischman A, Roy S, Zorman C, Moran JM, Melzak J (2002) Evaluation of MEMS materials of construction for implantable medical devices. Biomater 23:2737–2750CrossRef Kotzar G, Freas M, Abel P, Fleischman A, Roy S, Zorman C, Moran JM, Melzak J (2002) Evaluation of MEMS materials of construction for implantable medical devices. Biomater 23:2737–2750CrossRef
Zurück zum Zitat Krebs A, Knoll T, Nußbaum D, Velten T (2009) Fabrication of enclosed SU-8 microchannels for cell handling applications. In: Proceedings 10th International Conference on Management of Innovative Technologies. Fiesa, Slovenia Krebs A, Knoll T, Nußbaum D, Velten T (2009) Fabrication of enclosed SU-8 microchannels for cell handling applications. In: Proceedings 10th International Conference on Management of Innovative Technologies. Fiesa, Slovenia
Zurück zum Zitat Lee H, Sun E, Ham D, Weissleder R (2008) Chip-NMR biosensor for detection and molecular analysis of cells. Nat Med 14. doi:10.1038/nm.1711 Lee H, Sun E, Ham D, Weissleder R (2008) Chip-NMR biosensor for detection and molecular analysis of cells. Nat Med 14. doi:10.​1038/​nm.​1711
Zurück zum Zitat Li D (2008) Encyclopedia of microfluidics and nanofluidics. Springer, Berlin Li D (2008) Encyclopedia of microfluidics and nanofluidics. Springer, Berlin
Zurück zum Zitat Mehta G, Lee J, Cha W, Tung Y-C, Lindermann JJ, Takayama S (2009) Hard top soft bottom microfluidic devices for cell culture and chemical analysis. Anal Chem 81:3714–3722CrossRef Mehta G, Lee J, Cha W, Tung Y-C, Lindermann JJ, Takayama S (2009) Hard top soft bottom microfluidic devices for cell culture and chemical analysis. Anal Chem 81:3714–3722CrossRef
Zurück zum Zitat Nußbaum D, Herrmann D, Knoll T, Velten T (2009) Micromixing Structures for Lab-on-Chip Applications: fabrication and Simulation of 90° Zigzag Microchannels in Dry Film Resist. In: Proceedings 4 M/ICOMM Conference, Karlsruhe, Germany Nußbaum D, Herrmann D, Knoll T, Velten T (2009) Micromixing Structures for Lab-on-Chip Applications: fabrication and Simulation of 90° Zigzag Microchannels in Dry Film Resist. In: Proceedings 4 M/ICOMM Conference, Karlsruhe, Germany
Zurück zum Zitat Sugino H, Ozaki K, Shirasaki Y, Arakawa T, Shoji S, Funatsu T (2009) On-chip microfluidic sorting with fluorescence spectrum detection and multiway separation. Lab Chip 9:1254–1260. doi:10.1039/b815765k CrossRef Sugino H, Ozaki K, Shirasaki Y, Arakawa T, Shoji S, Funatsu T (2009) On-chip microfluidic sorting with fluorescence spectrum detection and multiway separation. Lab Chip 9:1254–1260. doi:10.​1039/​b815765k CrossRef
Zurück zum Zitat Tuomikoski S, Franssila S (2005) Free-standing SU-8 microfluidic chips by adhesive bonding and release etching. Sensor Actuat A 120:408–415CrossRef Tuomikoski S, Franssila S (2005) Free-standing SU-8 microfluidic chips by adhesive bonding and release etching. Sensor Actuat A 120:408–415CrossRef
Metadaten
Titel
Polymer-based fabrication techniques for enclosed microchannels in biomedical applications
verfasst von
Annabel Krebs
Thorsten Knoll
Dominic Nußbaum
Thomas Velten
Publikationsdatum
01.11.2012
Verlag
Springer-Verlag
Erschienen in
Microsystem Technologies / Ausgabe 11/2012
Print ISSN: 0946-7076
Elektronische ISSN: 1432-1858
DOI
https://doi.org/10.1007/s00542-012-1499-8

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