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菌丝体助力活体纠缠网络复合材料的制造。

Fabrication of Living Entangled Network Composites Enabled by Mycelium.

机构信息

Department of Mechanical Engineering, City University of Hong Kong, Kowloon, Hong Kong.

Shaping Matter Lab, Faculty of Aerospace Engineering, Delft University of Technology, Delft, 2629 HS, Netherlands.

出版信息

Adv Sci (Weinh). 2024 Jun;11(24):e2309370. doi: 10.1002/advs.202309370. Epub 2024 Mar 13.

Abstract

Organic polymer-based composite materials with favorable mechanical performance and functionalities are keystones to various modern industries; however, the environmental pollution stemming from their processing poses a great challenge. In this study, by finding an autonomous phase separating ability of fungal mycelium, a new material fabrication approach is introduced that leverages such biological metabolism-driven, mycelial growth-induced phase separation to bypass high-energy cost and labor-intensive synthetic methods. The resulting self-regenerative composites, featuring an entangled network structure of mycelium and assembled organic polymers, exhibit remarkable self-healing properties, being capable of reversing complete separation and restoring ≈90% of the original strength. These composites further show exceptional mechanical strength, with a high specific strength of 8.15 MPa g.cm, and low water absorption properties (≈33% after 15 days of immersion). This approach spearheads the development of state-of-the-art living composites, which directly utilize bioactive materials to "self-grow" into materials endowed with exceptional mechanical and functional properties.

摘要

具有优异机械性能和功能的有机聚合物基复合材料是各种现代工业的关键;然而,其加工所带来的环境污染带来了巨大的挑战。在本研究中,通过发现真菌菌丝的自主相分离能力,引入了一种新的材料制造方法,该方法利用这种生物代谢驱动、菌丝生长诱导的相分离来避免高能耗和劳动密集型的合成方法。所得的自修复复合材料具有菌丝和组装有机聚合物的缠结网络结构,表现出显著的自修复性能,能够完全逆转分离并恢复约 90%的原始强度。这些复合材料还表现出优异的机械强度,比强度高达 8.15 MPa·g·cm,吸水率低(浸泡 15 天后约为 33%)。这种方法开创了先进的活性复合材料的发展,这些复合材料直接利用生物活性材料“自我生长”成具有优异机械和功能特性的材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b0e2/11200020/f35a254e292c/ADVS-11-2309370-g005.jpg

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