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◆ Advanced science (Weinheim, Baden-Wurttemberg, Germany)2026-08-11

Multi-Scale Bionic Structure Constructs Biomass Flame-Retardant Thermal Insulation Foam Material.

Jianming Liao, Lijun Fan, Yunyuan Dong, Xuyu Bao, Xiaobin Chen, Qifu Zheng, Guanqing Zhang, Shen Wang, Wei Chen, Min Zhang, Shuaiming He

原始摘要(英文原文)· Original abstract
Amid intensifying environmental and energy pressures, sustainable thermal-insulation materials that also provide effective fire protection are increasingly needed for buildings. Cellulose-based foams are promising candidates for building-envelope applications; however, their practical deployment is hindered by limited fire performance, inadequate structural stability, and complex processing. Here, we propose a multiscale biomimetic strategy inspired by mussel adhesion and hierarchical brick-and-mortar architectures. Polydopamine is introduced as an interfacial bridging layer to uniformly immobilize bentonite nanosheets within a cellulose network, enabling the fabrication of high-efficiency flame-retardant cellulose-based biomimetic foam (CBF) through aqueous mechanical foaming and ambient-pressure drying. The resulting CBF exhibits low thermal conductivity alongside improved flame retardancy and environmental compatibility. A cradle-to-grave life-cycle assessment further indicates lower greenhouse-gas emissions and reduced toxicity-related impacts than conventional petroleum-derived foams, while retaining recyclability and biodegradability. Collectively, these results establish a green, scalable route to high-performance, degradable thermal-insulation materials for safer and more energy-efficient buildings.
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Multi-Scale Bionic Structure Constructs Biomass Flame-Retardant Thermal Insulation Foam Material. — 科研速览 Science Skim