Capezza Antonio J, Bettelli Mercedes, Wei Xinfeng, Jiménez-Rosado Mercedes, Guerrero Antonio, Hedenqvist Mikael
Department of Fibre and Polymer Technology, KTH Royal Institute of Technology, Teknikringen 56, Stockholm SE-100 44, Sweden.
Department of Chemical Engineering, Universidad de Sevilla, Sevilla 41012, Spain.
ACS Omega. 2023 Dec 1;9(1):1341-1351. doi: 10.1021/acsomega.3c07711. eCollection 2024 Jan 9.
Biocomposites based on wheat gluten and reinforced with carbon fibers were produced in line with the strive to replace fossil-based plastics with microplastic-free alternatives with competing mechanical properties. The materials were first extruded/compounded and then successfully injection molded, making the setup adequate for the current industrial processing of composite plastics. Furthermore, the materials were manufactured at very low extrusion and injection temperatures (70 and 140 °C, respectively), saving energy compared to the compounding of commodity plastics. The sole addition of 10 vol % fibers increased yield strength and stiffness by a factor of 2-4 with good adhesion to the protein. The biocomposites were also shown to be biodegradable, lixiviating into innocuous molecules for nature, which is the next step in the development of sustainable bioplastics. The results show that an industrial protein coproduct reinforced with strong fibers can be processed using common plastic processing techniques. The enhanced mechanical performance of the reinforced protein-based matrix herein also contributes to research addressing the production of safe materials with properties matching those of traditional fossil-based plastics.
基于小麦面筋并以碳纤维增强的生物复合材料的生产,是为了努力用具有竞争力机械性能的无微塑料替代品取代化石基塑料。这些材料首先经过挤出/混合,然后成功注塑成型,使得该装置适用于当前复合塑料的工业加工。此外,这些材料在非常低的挤出和注塑温度(分别为70和140°C)下制造,与商品塑料的混合相比节省了能源。仅添加10体积%的纤维就能使屈服强度和刚度提高2至4倍,且与蛋白质具有良好的附着力。这些生物复合材料还被证明是可生物降解的,会分解为对自然无害的分子,这是可持续生物塑料发展的下一步。结果表明,一种用强纤维增强的工业蛋白质副产品可以使用常见的塑料加工技术进行加工。本文中增强的基于蛋白质的基体的机械性能也有助于开展相关研究,以生产出性能与传统化石基塑料相匹配的安全材料。