Self‐Healing Behavior of Metallopolymers in Complex3D‐Structures Obtained by DLP‐Based 3D‐Printing
Article 2025 en
Authors
MK
Michael L. Klein
PF
Patrick Feßer
SZ
Stefan Zechel
Abstract
1 min read
This current study focusses on the investigation of the self-healing abilities of metallopolymers containing different kinds of metal complexes, which were processed by direct digital light processing (DLP) based three-dimensional (3D) printing. For this purpose, 2-phenoxyethyl acrylate is mixed with ligand-containing monomers either based on triphenylmethyl(trt)-histidine or terpyridine, respectively. Either zinc(II) or nickel(II) salts are successfully applied for a complexation of the ligand monomers in solution and, subsequently, photopolymerization is performed. The thermo-mechanical properties of the obtained metallopolymers were characterized by differential scanning calorimetry (DSC), thermogravimetric analysis (TGA) as well as dynamic mechanical thermal analysis (DMTA). Multiple damages with defined forces ranging from 20 to 1500 mN were introduced into the 3D-structures and successfully healed within 24 h at 70 °C or 120 °C, respectively without losing the structural integrity of the overall 3D-structures. Herein, excellent healing efficiencies up to 97 % were determined. Consequently, these hollow structures not only feature very good self-healing abilities but also excellent retention of the 3D-structure at and above the healing temperature.
Stefan Bode, Ranjita K. Bose, S. Matthes, Manfred Ehrhardt, Andreas Seifert, Felix H. Schacher, Renzo M. Paulus, Steffi Stumpf, Benedict Sandmann, Jürgen Vitz, Andreas Winter, Stephanie Hoeppener, Santiago J. García, Stefan Spange, Sybrand van der Zwaag, Martin D. Hager, Ulrich Sigmar Schubert
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