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Strong Anisotropic Transparent Wood with Large Ductility.

Created on 01 Sep 2026

Authors

Zijun Dai, Zhaoxin Zhang, Kunqing Yu, Yuying Kong, Shujing Guo, Jingxuan Pan, Xuan Yang, Zheng Jia, Shuze Zhu

Published in

ACS applied materials & interfaces. Aug 26, 2026. Epub Aug 26, 2026.

Abstract

A longstanding challenge in processing natural wood into high-performance structural materials lies in overcoming the inherent trade-off between strength and fracture strain, compromising its work-of-fracture (toughness). Here, we report a mechanical-confinement-reinforced strategy that can transform fast-growing, low-density balsa wood into an anisotropic, fully biobased laminated wood film (LWF). The resulting LWF achieves an extraordinary synergy of mechanical properties, exhibiting a tensile strength (∼560 MPa) rivaling that of steel alloys, a large fracture strain (∼11%), and a work-of-fracture (∼30 MJ·m-3) enhanced by 300-fold over its natural precursor. This strategy is generalizable across multiple wood species to consistently obtain fracture strain near 10%, yielding a maximum strength of 710 MPa and a work-of-fracture of 41 MJ·m-3. The exceptional performance originates from a multiscale architecture featuring a cellulose-nanofiber (CNF)-reinforced core fused with dense CNF surface layers, which transforms the failure mode from brittle shear to ductile fracture via mechanical constraint. Concurrently, the LWF demonstrates excellent optical properties (∼87% transmittance, ∼80% haze), enabling anisotropic light modulation for antiglare applications. This work presents a generalizable design paradigm for creating sustainable, high-performance structural materials that transcend conventional property trade-offs.

PMID:
42676213
Bibliographic data and abstract were imported from PubMed on 01 Sep 2026.

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