材料科学
水分
木质素
韧性
工作(物理)
湿度
复合材料
石膏
模数
能源消耗
资源(消歧)
环境科学
细胞壁
相对湿度
断裂韧性
理论(学习稳定性)
联轴节(管道)
各向异性
定向刨花板
能量(信号处理)
高效能源利用
肿胀 的
弹性模量
缓冲器(光纤)
纤维
工艺工程
结构稳定性
作者
Xuan Wang,Jing Kong,Lingfeng Kong,Suxiang Li,Mingzhi Wang,Jinzhen Cao
摘要
ABSTRACT Reducing building energy consumption requires passive materials that buffer environmental fluctuations and lessen reliance on energy‐intensive heating, ventilation, and air‐conditioning systems. Wood is attractive for humidity regulation because its hydrophilic cell walls enable reversible moisture sorption; however, absorbed water also induces swelling, anisotropic deformation, and mechanical relaxation, imposing a long‐standing trade‐off between moisture‐buffering capacity and dimensional stability. Here, we report a cell wall reconstruction strategy in which D‐sorbitol forms a flexible multivalent hydrogen‐bond network with cellulose, while reconfigured lignin features strengthened covalent connectivity and enhanced interfacial coupling with cellulose, thereby modifying cell wall interactions associated with moisture uptake and deformation. The resulting wood combines a moisture buffer value of 3.9 g m − 2 %RH − 1 with a reduction in volumetric swelling from 13.6% to 2.5%. It exceeds native wood in modulus of rupture and impact toughness by 32% and 33%, respectively. Building energy simulations show that replacing gypsum board with reconstructed wood reduces office‐building energy demand, achieving a nationwide weighted energy‐saving rate of 12.9%. By coordinating cellulose, D‐sorbitol, and lignin interactions, this work establishes a molecular design principle for adaptive biomass‐based building materials that convert moisture into a functional resource for passive environmental regulation.
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