材料科学
纳米技术
明胶
自愈水凝胶
脚手架
粒子(生态学)
天然材料
纳米颗粒
表面改性
仿生学
墨水池
沉积(地质)
菌丝体
结构化
碳纤维
结构着色
吸附
形态学(生物学)
胶体
仿生材料
智能材料
高分子科学
胶粒
碳纳米管
作者
Sarah Schyck,Mark Ablonczy,Sourav Patranabish,Kunal Masania
标识
DOI:10.1002/adfm.202530836
摘要
ABSTRACT As society seeks alternatives to energy‐intensive manufacturing, biological growth offers an underexplored route for material fabrication. While prior studies have demonstrated direct ink writing of mycelium‐based composites, these approaches often use mycelium only as a structural filler. Here, we exploit active hyphal growth as a post‐printing, growth‐driven functionalization mechanism to self‐assemble particles and tune material properties. When micro‐ and nano‐particles are introduced into the liquid growth medium, their incorporation follows distinct, size‐dependent pathways. Nanoparticles adsorb onto and armor the hyphae, whilst micron‐sized particles become physically entangled within the growing network. By printing inoculated, cross‐linkable hydrogels via direct ink writing, we spatially confine the mycelial architecture without disrupting growth. We introduce selective particle deposition using a dissolvable gelatin mask, enabling localized functionalization. We explore how the shape morphology evolves as the mycelium grows from the hydrogel scaffold into the media. Incorporation of conductive carbon particles enhances the native bioelectric signaling, increasing the signal‐to‐noise ratio by 2.7‐fold and peak amplitude by 9‐fold. Together, these findings establish a growth‐programmable living fabricating strategy, where multifunctional materials can self‐assemble through the natural expansion of living networks.
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