Superstrong, sustainable, origami wood paper enabled by dual-phase nanostructure regulation in cell walls

Author:

Tang Jianfu1ORCID,Wu Lianping2ORCID,Fan Xueqin1,Dong Xiaofei1,Li Xueqi1,Xie Yanjun1ORCID,Li Jian1,Rao Jiancun3ORCID,Li Teng2ORCID,Gan Wentao1ORCID

Affiliation:

1. Key Laboratory of Bio-based Material Science & Technology (Ministry of Education), Northeast Forestry University, Harbin, PR China.

2. Department of Mechanical Engineering, University of Maryland, College Park, MD, USA.

3. AIM Lab, Maryland NanoCenter, University of Maryland, College Park, MD, USA.

Abstract

Constructing a crystalline-amorphous hybrid structure is an effective strategy to overcome the conflict between the strength and toughness of materials. However, achieving such a material structure often involves complex, energy-intensive processing. Here, we leverage the natural wood featuring coexisting crystalline and amorphous regions to achieve superstrong and ultratough wood paper (W-paper) via a dual-phase nanostructure regulation strategy. After partially removing amorphous hemicellulose and eliminating most lignin, the treated wood can self-densify through an energy-efficient air drying, resulting in a W-paper with high tensile strength, toughness, and folding endurance. Coarse-grained molecular dynamics simulations reveal the underlying deformation mechanism of the crystalline and amorphous regions inside cell walls and the failure mechanism of the W-paper under tension. Life cycle assessment reveals that W-paper shows a lower environmental impact than commercial paper and common plastics. This dual-phase nanostructure regulation based on natural wood may provide valuable insights for developing high-performance and sustainable film materials.

Publisher

American Association for the Advancement of Science (AAAS)

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