Di Credico Barbara, Tagliaro Irene, Cobani Elkid, Conzatti Lucia, D'Arienzo Massimiliano, Giannini Luca, Mascotto Simone, Scotti Roberto, Stagnaro Paola, Tadiello Luciano
Department of Materials Science, INSTM, University of Milano-Bicocca, Via R. Cozzi, 55, 20125 Milano, Italy.
Istituto per lo Studio delle Macromolecole, ISMAC, CNR, 16149 Genova, Italy.
Nanomaterials (Basel). 2018 Dec 31;9(1):46. doi: 10.3390/nano9010046.
Global industry is showing a great interest in the field of sustainability owing to the increased attention for ecological safety and utilization of renewable materials. For the scientific community, the challenge lies in the identification of greener synthetic approaches for reducing the environmental impact. In this context, we propose the preparation of novel biocomposites consisting of natural rubber latex (NRL) and sepiolite (Sep) fibers through the latex compounding technique (LCT), an ecofriendly approach where the filler is directly mixed with a stable elastomer colloid. This strategy favors a homogeneous dispersion of hydrophilic Sep fibers in the rubber matrix, allowing the production of high-loaded sepiolite/natural rubber (Sep/NR) without the use of surfactants. The main physicochemical parameters which control Sep aggregation processes in the aqueous medium were comprehensively investigated and a flocculation mechanism was proposed. The uniform Sep distribution in the rubber matrix, characteristic of the proposed LCT, and the percolative filler network improved the mechanical performances of Sep/NR biocomposites in comparison to those of analogous materials prepared by conventional melt-mixing. These outcomes indicate the suitability of the adopted sustainable procedure for the production of high-loaded clay⁻rubber nanocomposites with remarkable mechanical features.
由于对生态安全和可再生材料利用的关注度不断提高,全球工业对可持续发展领域表现出极大兴趣。对于科学界而言,挑战在于确定更环保的合成方法以减少环境影响。在此背景下,我们提出通过胶乳复合技术(LCT)制备由天然橡胶胶乳(NRL)和海泡石(Sep)纤维组成的新型生物复合材料,这是一种环保方法,其中填料直接与稳定的弹性体胶体混合。该策略有利于亲水性Sep纤维在橡胶基体中均匀分散,无需使用表面活性剂即可生产高负载海泡石/天然橡胶(Sep/NR)。全面研究了控制Sep在水介质中聚集过程的主要物理化学参数,并提出了絮凝机理。与通过传统熔融共混制备的类似材料相比,所提出的LCT所具有的橡胶基体中Sep均匀分布以及渗流填料网络改善了Sep/NR生物复合材料的力学性能。这些结果表明所采用的可持续方法适用于生产具有卓越力学性能的高负载粘土-橡胶纳米复合材料。