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首页> 外文期刊>Journal of Polymers and the Environment >Influence of Montmorillonite and Clinoptilolite on the Properties of Starch/Minerals Biocomposites and Their Effect on Aquatic Environments
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Influence of Montmorillonite and Clinoptilolite on the Properties of Starch/Minerals Biocomposites and Their Effect on Aquatic Environments

机译:蒙脱石和Clinoptilogolite对淀粉/矿物生物复合材料性能及其对水产环境影响的影响

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This work has analyzed the properties of thermoplastic starch (TPS)-minerals biocomposites and their degradation on water bodies. The TPS-minerals biocomposites were prepared from cassava peels, residual glycerin, and minerals [montmorillonite (MMT) and clinoptilolite (CLI)]. The TPS and TPS-minerals biocomposites were characterized by scanning electron microscopy (SEM), tensile tests, and contact angle measurements. Moreover, microcosm degradation tests evaluated the release of dissolved organic carbon content (DOC) and total nitrogen (TN), carbon/nitrogen ratio (C/N), and heterotrophic bacteria count (HBC) in order to simulate the environmental effects of these biocomposites disposal. The SEM results showed the appearance of whole starch grains in TPS, which is an indicative of a partial thermo-plasticization. Furthermore, it was observed a surface roughness in all samples, with a possible better dispersion of mineral particles for TPS-MMT. This fact indicates an improvement of the tensile strength and elongation at break, when compared to the TPS-CLI. Both TPS-MMT and TPS-CLI presented lower contact angle values than TPS. These characteristics may assist in the microorganism access to the surface, favoring the degradation and the release of carbon and nitrogen. Microcosm degradation tests revealed an increase in DOC release from 18 to 98 mg L(-1)for TPS-CLI after 24 h. Besides, there was an increase in TN release to 200% for TPS-MMT and TPS and 500% for TPS-CLI. The HBC presented a high growth after 12 h of contact, especially for TPS (3.4 +/- 0.2 log CFU mL(-1)). Therefore, the TPS-minerals (clinoptilolite/montmorillonite) promoted better surface properties to the biocomposites, by making them biodegradable on aquatic environments, without unbalancing the nutrient loads among different environmental compartments.
机译:该工作已经分析了热塑性淀粉(TPS) - Minerals生物复合材料的性质及其对水体的降解。 TPS-矿物生物复合材料由木薯剥离,残留的甘油和矿物[蒙脱石(MMT)和Clinophtilolite(CLI)]制备。通过扫描电子显微镜(SEM),拉伸试验和接触角测量,表征TPS和TPS-矿物生物复合材料。此外,微观劣化试验评估了溶解有机碳含量(DOC)和总氮(TN),碳/氮比(C / N)和异养细菌计数(HBC)的释放,以模拟这些生物复合材料的环境影响处理。 SEM结果表明,TPS中的整个淀粉颗粒的外观,这是一个局部热塑性的指示。此外,在所有样品中观察到表面粗糙度,可以更好地分散TPS-MMT。与TPS-CLI相比,该事实表明,在与TPS-CLI相比时,改善了抗拉强度和断裂时的伸长率。 TPS-MMT和TPS-CLI都呈现比TPS更低的接触角值。这些特征可以有助于微生物进入表面,有利于碳和氮的降解和释放。微观降解试验显示在24小时后为TPS-CLI释放的DOC释放的增加18至98mg L(-1)。此外,TPS-MMT和TPS的TN释放增加200%,TPS-CLI的500%。 HBC在12小时后呈现高生长,特别是对于TPS(3.4 +/- 0.2对数CFU mL(-1))。因此,通过使水生环境中可生物降解,TPS-矿物(Clinophtilolite / Montmorillonite)促进了更好的表面性质,使其在水生环境中进行了可生物可生物复合材料,而不会在不同的环境隔间之间不平衡营养负荷。

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