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利用新型水分散纳米杂化增强剂改善淀粉的物理性能。

Improving the physical properties of starch using a new kind of water dispersible nano-hybrid reinforcement.

机构信息

Instituto de Química Inorgánica, Medio Ambiente y Energía (INQUIMAE), CONICET - UBA , Ciudad Universitaria, C1428EHA, Buenos Aires, Argentina; Laboratorio de Polímeros y Materiales Compuestos, Departamento de Física, FCEyN, UBA - IFIBA - CONICET, Ciudad Universitaria, C1428EHA, Buenos Aires, Argentina.

Instituto de Química Inorgánica, Medio Ambiente y Energía (INQUIMAE), CONICET - UBA , Ciudad Universitaria, C1428EHA, Buenos Aires, Argentina; Instituto de Investigación e Ingeniería Ambiental, Universidad Nacional de San Martín, Campus Miguelete, 25 de Mayo y Francia, 1650 San Martín, Provincia de Buenos Aires, Argentina.

出版信息

Carbohydr Polym. 2015 Aug 20;127:291-9. doi: 10.1016/j.carbpol.2015.03.071. Epub 2015 Mar 28.

Abstract

Plasticized cassava starch matrix composites reinforced by a multi-wall carbon nanotube (MWCNT)-hercynite (FeAl2O4) nanomaterial were developed. The hybrid nanomaterial consists of FeAl2O4 nanoparticles anchored strongly to the surface of the MWCNT. This nano-hybrid filler shows an irregular geometry, which provides a strong mechanical interlocking with the matrix, and excellent stability in water, ensuring a good dispersion in the starch matrix. The composite containing 0.04wt.% of the nano-hybrid filler displays increments of 370% in the Young's modulus, 138% in tensile strength and 350% in tensile toughness and a 70% decrease in water vapor permeability relative to the matrix material. All of these significant improvements are explained in terms of the nano-hybrid filler homogenous dispersion and its high affinity with both plasticizers, glycerol and water, which induces crystallization without deterioration of the tensile toughness.

摘要

采用多壁碳纳米管(MWCNT)-尖晶石(FeAl2O4)纳米材料增强的塑化木薯淀粉基复合材料。该杂化纳米材料由强锚固在 MWCNT 表面的 FeAl2O4 纳米颗粒组成。这种纳米杂化填料呈现不规则的几何形状,与基体具有很强的机械联锁作用,并且在水中具有优异的稳定性,确保在淀粉基体中具有良好的分散性。含有 0.04wt.%纳米杂化填料的复合材料的杨氏模量提高了 370%,拉伸强度提高了 138%,拉伸韧性提高了 350%,水蒸气渗透率相对于基体材料降低了 70%。所有这些显著的改进都可以根据纳米杂化填料的均匀分散及其与增塑剂甘油和水的高亲和力来解释,这导致了结晶而不会降低拉伸韧性。

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