Tick-inspired, self-healing, and strongly-adhesive coatings with biodegradability and phosphorus-free fire retardancy
作者:Cheng Wang, Siqi Huo, Guofeng Ye, Cheng‐Fei Cao, Min Hee Hong, Ye‐Tang Pan, Pingan Song, Hao Wang, Tielin Wang, Zhitian Liu · 发表于:Journal of Material Science and Technology · 年份:2025 · DOI:10.1016/j.jmst.2025.10.003 · 被引用次数:62 · 研究领域:Flame retardant materials and properties、Polymer composites and self-healing、Fire dynamics and safety research
• A high-performance, fire-retardant coating (DCNC/40PEN) is developed; • DCNC/40PEN can adhere to different substrates and self-heal at room temperature; • DCNC/40PEN features closed-loop recyclability and biodegradation; • Phosphorus-free DCNC/40PEN provides superior fire protection for various materials. Although widely applied in diverse industries, conventional fire-retardant coatings generally suffer from poor adhesion and fire protection. These coatings are typically phosphorus-containing and non-recyclable, making their waste prone to causing environmental issues, e.g., bioaccumulation and (micro)plastic pollution. Inspired by the multi-non-covalent adhesion mechanism of ticks, we designed a strongly adhesive and self-healing coating (DCNC/40PEN) with superior fire protection by incorporating hydrogen bonding, π-π stacking, and cation-π interactions. Incorporating these interactions into a dynamic covalent network further imparts closed-loop recyclability and biodegradability to the coating. DCNC/40PEN can adhere to diverse substrates and self-heal at room temperature due to the non-covalent and covalent interactions within its structure. DCNC/40PEN features closed-loop recyclability and biodegradation because of its dynamic covalent network. Owing to the catalytic and crosslinking carbonization of sulfonate and Schiff base groups, phosphorus-free DCNC/40PEN delivers exceptional fire protection for various materials, e.g., wood, polymer foams, and steel. At a coating ...