Andrade-Guel Marlene, Cabello-Alvarado Christian, Avila-Orta Carlos Alberto, Pérez-Alvarez Marissa, Cadenas-Pliego Gregorio, Reyes-Rodríguez Pamela Yahaira, Rios-González Leopoldo
Centro de Investigación en Química Aplicada, Saltillo 25294, Coahuila, Mexico.
CONACYT-Centro de Investigacion y de Innovacion del Estado de Tlaxcala, Tlaxcala 90000, Tlaxcala, Mexico.
Polymers (Basel). 2022 Mar 23;14(7):1300. doi: 10.3390/polym14071300.
Nowadays, highly flammable and harmful plastic materials are used in many daily applications. To prevent burning of materials, other harmful molecules or materials that are not environmentally friendly are added to plastics. To overcome this environmental issue, new materials have been investigated. Lignin, an industrial by-product, is an abundant biopolymer that can be used in fire safety plastics; it is considered a renewable and readily available resource. In this work, PP-TiO/lignin composites were obtained with TiO/lignin mixtures through the melt extrusion process, with different weight percentages of nanoparticles (10, 20, 25, and 30 wt.%). The PP-TiO/lignin composites were characterized by XRD, FTIR, TGA, and SEM. Furthermore, cone calorimetry tests and the mechanical properties were evaluated. Cone calorimetry tests revealed that the introduction of 25 wt.% TiO-lignin to the PP matrix reduced the peak of heat release rate (PHRR) and total heat release (THR) by 34.37% and 35.45%, respectively. The flame retardancy index (FRI) values of the composites were greater than 1.0 and were classified as ; the highest value of 1.93 was obtained in the PP-30 sample. The tensile tests demonstrated that the flexural modulus of the composites increased gradually with increasing lignin and TiO content, and the flexural strength decreased slightly. The use of lignin in PP composites can be an excellent alternative to synthesize new materials with improved flame-retardant properties and which is friendly to the environment.
如今,许多日常应用中都使用了高度易燃且有害的塑料材料。为了防止材料燃烧,会向塑料中添加其他有害分子或不环保的材料。为了克服这一环境问题,人们对新型材料进行了研究。木质素是一种工业副产品,是一种丰富的生物聚合物,可用于消防安全塑料;它被认为是一种可再生且易于获取的资源。在这项工作中,通过熔融挤出工艺,将TiO/木质素混合物与不同重量百分比(10%、20%、25%和30%重量)的纳米颗粒混合,制备了PP-TiO/木质素复合材料。通过XRD、FTIR、TGA和SEM对PP-TiO/木质素复合材料进行了表征。此外,还评估了锥形量热试验和力学性能。锥形量热试验表明,向PP基体中引入25%重量的TiO-木质素,可使热释放速率峰值(PHRR)和总热释放(THR)分别降低34.37%和35.45%。复合材料的阻燃指数(FRI)值大于1.0,被归类为;在PP-30样品中获得了最高值1.93。拉伸试验表明,复合材料的弯曲模量随着木质素和TiO含量的增加而逐渐增加,弯曲强度略有下降。在PP复合材料中使用木质素可以成为合成具有改进阻燃性能且对环境友好的新材料的极佳替代品。