Alignment and actuation of liquid crystals via 3D confinement and two-photon laser printing

Author:

Hsu Li-Yun1ORCID,Melo Santiago Gomez23ORCID,Vazquez-Martel Clara1ORCID,Spiegel Christoph A.1ORCID,Ziebert Falko23ORCID,Schwarz Ulrich S.23ORCID,Blasco Eva1ORCID

Affiliation:

1. Institute for Molecular Systems Engineering and Advanced Materials (IMSEAM), Heidelberg University, Im Neuenheimer Feld 225, Heidelberg 69120, Germany.

2. Institute for Theoretical Physics, Heidelberg University, Philosophenweg 19, Heidelberg 69120 Germany.

3. BioQuant, Heidelberg University, Im Neuenheimer Feld 267, Heidelberg 69120 Germany.

Abstract

Liquid crystalline (LC) materials are especially suited for the preparation of active three-dimensional (3D) and 4D microstructures using two-photon laser printing. To achieve the desired actuation, the alignment of the LCs has to be controlled during the printing process. In most cases studied before, the alignment relied on surface modifications and complex alignment patterns and concomitant actuation were not possible. Here, we introduce a strategy for spatially aligning LC domains in three-dimensional space by using 3D-printed polydimethylsiloxane-based microscaffolds as confinement barriers, which induce the desired director field. The director field resulting from the boundary conditions is calculated with Landau de Gennes theory and validated by comparing experimentally measured and theoretically predicted birefringence patterns. We demonstrate our procedures for structures of varying complexity and then employed them to fabricate 4D microstructures that show the desired actuation. Overall, we obtain excellent agreement between theory and experiment. This opens the door for rational design of functional materials for 4D (micro)printing in the future.

Publisher

American Association for the Advancement of Science (AAAS)

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