Two‐Photon Direct Laser Writing of 3D Scaffolds through C, H‐Insertion Crosslinking in a One‐Component Material System

Author:

Song Dan12ORCID,Husari Ayman3,Kotz‐Helmer Frederik4ORCID,Tomakidi Pascal3,Rapp Bastian E.14ORCID,Rühe Jürgen12ORCID

Affiliation:

1. Cluster of Excellence livMatS @ FIT–Freiburg Center of Interactive Materials and Bioinspired Technologies University of Freiburg Georges‐Köhler‐Allee 105 79110 Freiburg Germany

2. Laboratory of Chemistry & Physics of Interfaces (CPI) Department of Microsystems Engineering (IMTEK) University of Freiburg Georges‐Köhler‐Allee 103 79110 Freiburg Germany

3. Division of Oral Biotechnology University Medical Center Freiburg Faculty of Medicine University of Freiburg Hugstetter Str. 55 79106 Freiburg Germany

4. Laboratory of Process Technology (NeptunLab) Department of Microsystems Engineering (IMTEK) University of Freiburg Georges‐Köhler‐Allee 103 79110 Freiburg Germany

Abstract

AbstractThe popularity of two‐photon direct laser writing in biological research is remarkable as this technique is capable of 3D fabrication of microstructures with unprecedented control, flexibility and precision. Nevertheless, potential impurities such as residual monomers and photoinitiators remaining unnoticed from the photopolymerization in the structures pose strong challenges for biological applications. Here, the first use of high‐precision 3D microstructures fabricated from a one‐component material system (without monomers and photoinitiators) as a 3D cell culture platform is demonstrated. The material system consists of prepolymers with built‐ in crosslinker motieties, requiring only aliphatic C, H units as reaction partners following two‐photon excitation. The material is written by direct laser writing using two‐photon processes in a solvent‐free state, which enables the generation of structures at a rapid scan speed of up to 500 mm s−1 with feature sizes scaling down to few micrometers. The generated structures possess stiffnesses close to those of common tissue and demonstrate excellent biocompatibility and cellular adhesion without any additional modification. The demonstrated approach holds great promise for fabricating high‐precision complex 3D cell culture scaffolds that are safe in biological environments.

Funder

Deutsche Forschungsgemeinschaft

European Research Council

Carl-Zeiss-Stiftung

H2020 European Research Council

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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