Bartoli Mattia, Arrigo Rossella, Malucelli Giulio, Tagliaferro Alberto, Duraccio Donatella
Center for Sustainable Future Technologies, Italian Institute of Technology, Via Livorno 60, 10144 Turin, Italy.
Department of Applied Science and Technology, Politecnico di Torino, Viale Teresa Michel 5, 15121 Alessandria, Italy.
Polymers (Basel). 2022 Jun 20;14(12):2506. doi: 10.3390/polym14122506.
"Biochar" (BC) is the solid residue recovered from the thermal cracking of biomasses in an oxygen-poor atmosphere. Recently, BC has been increasingly explored as a sustainable, inexpensive, and viable alternative to traditional carbonaceous fillers for the development of polymer-based composites. In fact, BC exhibits high thermal stability, high surface area, and electrical conductivity; moreover, its main properties can be properly tuned by controlling the conditions of the production process. Due to its intriguing characteristics, BC is currently in competition with high-performing fillers in the formulation of multi-functional polymer-based composites, inducing both high mechanical and electrical properties. Moreover, BC can be derived from a huge variety of biomass sources, including post-consumer agricultural wastes, hence providing an interesting opportunity toward a "zero waste" circular bioeconomy. This work aims at providing a comprehensive overview of the main achievements obtained by combining BC with several thermoplastic and thermosetting matrices. In particular, the effect of the introduction of BC on the overall performance of different polymer matrices will be critically reviewed, highlighting the influence of differently synthesized BC on the final performance and behavior of the resulting composites. Lastly, a comparative perspective on BC with other carbonaceous fillers will be also provided.
“生物炭”(BC)是在缺氧气氛中对生物质进行热裂解后回收的固体残余物。近年来,生物炭作为一种可持续、廉价且可行的替代品,越来越多地被用于开发聚合物基复合材料,以替代传统的碳质填料。事实上,生物炭具有高热稳定性、高比表面积和导电性;此外,通过控制生产过程条件可以对其主要性能进行适当调整。由于其引人关注的特性,在制备多功能聚合物基复合材料时,生物炭目前正在与高性能填料展开竞争,有望同时实现高机械性能和高电气性能。此外,生物炭可以源自包括消费后农业废弃物在内的多种生物质来源,从而为实现“零废弃物”循环生物经济提供了一个有趣的契机。本文旨在全面概述将生物炭与几种热塑性和热固性基体相结合所取得的主要成果。特别是,将对引入生物炭对不同聚合物基体整体性能的影响进行批判性综述,突出不同合成方式得到的生物炭对所得复合材料最终性能和行为的影响。最后,还将提供生物炭与其他碳质填料的对比观点。