肿胀 的
材料科学
复合材料
纤维素
极限抗拉强度
韧性
水分
抗弯强度
溶解
渗透(战争)
蒸发
定向刨花板
化学工程
热力学
物理
工程类
运筹学
作者
Tao Zhang,weimin Chen,Daotong Zhang,Yan Chen,Kai Yang,Pei Yang,Nana Pan,qi Quan,Zhao Li,Ke Zhou,Minzhi Chen,Xiaoyan Zhou
出处
期刊:Research Square - Research Square
日期:2022-11-08
标识
DOI:10.21203/rs.3.rs-2230215/v1
摘要
Abstract The highly oriented cellulose microfibrils in secondary cell wall provide a unique advantage for developing super-strength wood. Here, we developed a two-tiered dynamic strategy that realized the self-densified wood by adequate swelling and moisture evaporation process without further hot pressing or via chemical oxidation pre-treatment. Our method requires only exposing delignified wood to a poor solvent that is able to infiltrate the cellulose skeleton without molecular-level dissolution, thus facilitating the effective penetration of moisture upon water replacement. The following natural moisture evaporation triggers self-aggregation of cellulose fibrils accompanying with dynamic re-formation of hydrogen bonds, thereby leading to a super-high mechanical strength (tensile strength: 596.24 ± 57.01 MPa, toughness: 10.43 ± 2.07 MJ m −3 , and flexural strength: 418.51 ± 23.86 MPa (balsa wood), 296.52 ± 10.41 MPa (pine wood)) to the resulting self-densified wood. More importantly, the swollen wood has the hydroplastic processing ability (using air-drying to design the shapes). The “cold” processing method satisfies the self-densification for various species of wood, providing a general strengthening strategy.
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