Robust Myco-Composites as a Platform for Versatile Hybrid-Living Structural Materials
Abstract
Fungal mycelium, a living network of filamentous threads, thrives on lignocellulosic waste and exhibits rapid growth, hydrophobicity, and intrinsic regeneration, offering a potential means to create next-generation sustainable and functional composites. However, existing hybrid-living mycelium composites (myco-composites) are tremendously constrained by conventional mold-based manufacturing processes, which are only compatible with simple geometries and coarse biomass substrates that enable gas exchange. Here we introduce a class of structural myco-composites manufactured with a novel platform that harnesses high-resolution biocomposite additive manufacturing and robust mycelium colonization with indirect inoculation. We leverage principles of hierarchical composite design and selective nutritional provision to create a robust myco-composite that is scalable, tunable, and compatible with complex geometries. To illustrate the versatility of this platform, we characterize the impact of mycelium colonization on mechanical and surface properties of the composite, finding that it yields the strongest mycelium composite reported to date, and demonstrate fabrication of unique foldable bio-welded containers and flexible mycelium textiles. This study bridges the gap between biocomposite and hybrid-living materials research, opening the door to advanced structural mycelium applications and demonstrating a novel platform for development of diverse hybrid-living materials.
Keywords
Cite
@article{arxiv.2305.12151,
title = {Robust Myco-Composites as a Platform for Versatile Hybrid-Living Structural Materials},
author = {Sabrina C. Shen and Nicolas A. Lee and William J. Lockett and Aliai D. Acuil and Hannah B. Gazdus and Branden N. Spitzer and Markus J. Buehler},
journal= {arXiv preprint arXiv:2305.12151},
year = {2023}
}