Marcioni Massimo, Zhao Mengxiao, Maddalena Lorenza, Pettersson Torbjörn, Avolio Roberto, Castaldo Rachele, Wågberg Lars, Carosio Federico
Dipartimento di Scienza Applicata e Tecnologia, Politecnico di Torino, Alessandria Site, Viale Teresa Michel 5, 15121 Alessandria, Italy.
Department of Fibre and Polymer Technology, KTH Royal Institute of Technology, Teknikringen 56-58, 10044 Stockholm, Sweden.
ACS Appl Mater Interfaces. 2023 Aug 2;15(30):36811-36821. doi: 10.1021/acsami.3c06652. Epub 2023 Jul 19.
New sustainable materials produced by green processing routes are required in order to meet the concepts of circular economy. The replacement of insulating materials comprising flammable synthetic polymers by bio-based materials represents a potential opportunity to achieve this task. In this paper, low-density and flame-retardant (FR) porous fiber networks are prepared by assembling Layer-by-Layer (LbL)-functionalized cellulose fibers by means of freeze-drying. The LbL coating, encompassing chitosan and sodium hexametaphosphate, enables the formation of a self-sustained porous structure by enhancing fiber-fiber interactions during the freeze-drying process. Fiber networks prepared from 3 Bi-Layer (BL)-coated fibers contain 80% wt of cellulose and can easily self-extinguish the flame during flammability tests in vertical configuration while displaying extremely low combustion rates in forced combustion tests. Smoke release is 1 order of magnitude lower than that of commercially available polyurethane foams. Such high FR efficiency is ascribed to the homogeneity of the deposited assembly, which produces a protective exoskeleton at the air/cellulose interface. The results reported in this paper represent an excellent opportunity for the development of fire-safe materials, encompassing natural components where sustainability and performance are maximized.
为了符合循环经济的理念,需要通过绿色加工路线生产新的可持续材料。用生物基材料替代包含易燃合成聚合物的绝缘材料是实现这一任务的潜在机会。在本文中,通过冷冻干燥逐层(LbL)功能化纤维素纤维来制备低密度和阻燃(FR)多孔纤维网络。包含壳聚糖和六偏磷酸钠的LbL涂层通过在冷冻干燥过程中增强纤维与纤维之间的相互作用,能够形成自持的多孔结构。由3个双层(BL)涂层纤维制备的纤维网络含有80%重量的纤维素,在垂直配置的燃烧测试中能够轻松自熄火焰,同时在强制燃烧测试中显示出极低的燃烧速率。烟雾释放比市售聚氨酯泡沫低1个数量级。如此高的阻燃效率归因于沉积组件的均匀性,它在空气/纤维素界面处产生了一个保护性外骨骼。本文报道的结果为开发消防安全材料提供了绝佳机会,这类材料包含天然成分,其中可持续性和性能得到了最大化。