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  4. Development of a microfluidic chip with integrated hydrogel membranes for tissue engineering applications
 
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Development of a microfluidic chip with integrated hydrogel membranes for tissue engineering applications

Publikationstyp
Conference Paper
Date Issued
2025
Sprache
English
Author(s)
Ehlers, Lisa  
Mikrosystemtechnik E-7  
Rennpferdt, Lukas  
Mikrosystemtechnik E-7  
Trieu, Hoc Khiem  
Mikrosystemtechnik E-7  
TORE-URI
https://hdl.handle.net/11420/61534
Start Page
417
End Page
419
Citation
11. MikroSystemTechnik Kongress 2025
Contribution to Conference
11. MikroSystemTechnik Kongress 2025  
Publisher DOI
10.30420/456614030
Publisher
VDE e.V.
ISBN of container
978-3-8007-6614-7
978-3-8007-6615-4
The integration of permeable hydrogel membranes into microfluidic glass chips enables novel applications in tissue engineering by mimicking capillary-like mass transport in vitro. This work describes a seamless process for fabricating fused silica chips and directly integrating hydrogel membranes using a single femtosecond laser system. This unification of Selective Laser-Induced Etching (SLE) and Two-Photon Polymerization (2PP) in one workflow eliminates system changes and enables precise alignment between rigid chip structures and soft functional membranes. The membranes are polymerized directly within structured microchannels sealed by a laser-welded glass lid. This allows for tunable and mechanically stable membrane structures embedded in a biocompatible, rigid substrate. The work focuses on the process development, material behavior during integration, and membrane positioning within the chip.
DDC Class
620: Engineering
Funding(s)
SFB 1615 - Teilprojekt A04: Selbstregulierende optimierte Oberflächen für autonom betriebene Bioprozesse  
SFB 1615 - SMARTe Reaktoren für die Verfahrenstechnik der Zukunft  
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