Printing Green: Microalgae‐Based Materials for 3D Printing with Light

Author:

Vazquez‐Martel Clara1ORCID,Florido Martins Lilliana1ORCID,Genthner Elisa2ORCID,Almeida Carlos3ORCID,Martel Quintana Antera3ORCID,Bastmeyer Martin24ORCID,Gómez Pinchetti Juan Luis3ORCID,Blasco Eva1ORCID

Affiliation:

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

2. Zoological Institute Cell and Neurobiology Karlsruhe Institute of Technology (KIT) Fritz‐Haber‐Weg 4 76131 Karlsruhe Germany

3. Banco Español de Algas (BEA) Universidad de Las Palmas de Gran Canaria (ULPGC) Muelle de Taliarte s/n, Telde Las Palmas 35214 Spain

4. Institute for Biological and Chemical Systems – Biological Information Processing (IBCS‐BIP) KIT Hermann‐von‐Helmholtz‐Platz 1 76344 Eggenstein‐Leopoldshafen Germany

Abstract

AbstractMicroalgae have emerged as sustainable feedstocks due to their ability to fix CO2 during cultivation, rapid growth rates, and capability to produce a wide variety of metabolites. Several microalgae accumulate lipids in high concentrations, especially triglycerides, along with lipid‐soluble, photoactive pigments such as chlorophylls and derivatives. Microalgae‐derived triglycerides contain longer fatty acid chains with more double bonds on average than vegetable oils, allowing a higher degree of post‐functionalization. Consequently, they are especially suitable as precursors for materials that can be used in 3D printing with light. This work presents the use of microalgae as “biofactories” to generate materials that can be further 3D printed in high resolution. Two taxonomically different strains —Odontella aurita (O. aurita, BEA0921B) and Tetraselmis striata (T. striata, BEA1102B)— are identified as suitable microalgae for this purpose. The extracts obtained from the microalgae (mainly triglycerides with chlorophyll derivatives) are functionalized with photopolymerizable groups and used directly as printable materials (inks) without the need for additional photoinitiators. The fabrication of complex 3D microstructures with sub‐micron resolution is demonstrated. Notably, the 3D printed materials show biocompatibility. These findings open new possibilities for the next generation of sustainable, biobased, and biocompatible materials with great potential in life science applications.

Funder

Carl-Zeiss-Stiftung

Fonds der Chemischen Industrie

Publisher

Wiley

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