Abstract
Cellulose fibers derived from renewable biomass exhibit exceptional tensile strength through molecular alignment and dense packing, yet their toughness remains limited, typically below 50 MJ m−3. Drawing inspiration from the helical nanoarchitecture of cherry bark, we introduce a bioinspired nano-orientation strategy to fabricate regenerated cellulose fibers with a biaxially oriented structure via a scalable microfluidic spinning technique. Combining experimental characterization and molecular simulations, we demonstrate that this biaxial nano-architecture effectively redistributes stress and suppresses crack propagation during deformation, achieving a remarkable fracture strain of 41% alongside a tensile strength of 553 MPa. This synergy yields a toughness of 184 MJ m−3, exhibiting highly competitive performance relative to most previously reported cellulose fibers and synthetic polymers, and achieving a mechanical performance on the same order of magnitude as natural spider silk. Moreover, this enhancement extends seamlessly from single fibers to woven fabrics, highlighting its potential for sustainable, high-performance materials in textiles, automotive components, and aerospace applications. Our findings illuminate a design for overcoming the intrinsic brittleness of cellulose fibers, advancing their applicability as eco-friendly structural materials.
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CITATION STYLE
Fu, X., Zhang, X., Yang, T., Zhang, Y., Jiao, C., Zhu, S., & Ye, D. (2026). Bioinspired nano-architecture for cellulose fibers with spider silk–like toughness. Nature Communications. https://doi.org/10.1038/s41467-026-74052-6
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