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首页> 外文期刊>Colloids and Surfaces, B. Biointerfaces >Porous epoxy phenolic novolac resin polymer microcapsules: Tunable release and bioactivity controlled by epoxy value
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Porous epoxy phenolic novolac resin polymer microcapsules: Tunable release and bioactivity controlled by epoxy value

机译:多孔环氧酚酚醛清漆树脂聚合物微胶囊:可调谐释放和通过环氧值控制的生物活性

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摘要

Microcapsules (MCs) prepared with diverse wall material structures may exhibit different properties. In this study, MCs were fabricated with three kinds of epoxy phenolic novolac resins (EPNs), which possessed unique epoxy values as wall-forming materials by interfacial polymerization. The effects of the EPN types on the surface morphology, particle size distribution, encapsulation efficiency, thermal stability as well as release behavior and bioactivity of the MCs were investigated. In all three samples, the MCs had nearly spherical shapes with fine monodispersities and sizes in the range of 7-30 mu m. Scanning electron microscopy (SEM) images showed that some small pores (ranging from 50 nm to 400 nm) appeared on the microcapsule surfaces and that the porosity decreased with an increasing of epoxy value. The X-ray diffractometer (XRD) analysis indicated that the cured EPN shells had larger degrees of crosslinking with higher epoxy values, leading to better thermal stabilities. Moreover, the release rate of the core material (pendimethalin) decreased with an increasing of epoxy value and thus resulted in a lower herbicidal control efficacy. The results of our research will enhance the potential application of EPNs as smart wall-forming materials to prepare porous MCs for controlled release. (C) 2018 Elsevier B.V. All rights reserved.
机译:用不同壁材料结构制备的微胶囊(MCS)可能表现出不同的性质。在本研究中,用三种环氧酚酚醛溶解树脂(EPNS)制造MCS,其通过界面聚合具有作为壁形成材料的独特环氧值。研究了EPN类型对MCS的表面形态,粒度分布,封装效率,热稳定性以及释放行为以及生物活性的影响。在所有三个样品中,MCS几乎是球形的形状,具有精细的单分散性和尺寸在7-30μm的范围内。扫描电子显微镜(SEM)图像显示,微胶囊表面上出现了一些小孔(范围为50nm至400nm),并且孔隙率随着环氧值的增加而降低。 X射线衍射仪(XRD)分析表明,固化的EPN壳具有较大程度的交联,具有较高的环氧值,导致更好的热稳定性。此外,芯材料(Pendimethalin)的释放速率随着环氧值的增加而降低,从而导致较低的除草效果。我们的研究结果将增强EPNS作为智能壁形成材料的潜在应用,以制备用于控制释放的多孔MCS。 (c)2018 Elsevier B.v.保留所有权利。

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