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Controlled synthesis of magnesium hydroxide nanoparticles with different morphological structures and related properties in flame retardant ethylene-vinyl acetate blends

机译:阻燃乙烯-乙酸乙烯酯共混物中不同形态结构和相关性能的氢氧化镁纳米粒子的控制合成

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摘要

Magnesium hydroxide nanoparticles with different morphological structures of needle-, lamellar- and rod-like nanocrystals have been synthesized by solution precipitation reactions of alkaline with magnesium chloride in the presence of complex dispersants and characterized in terms of morphology, particle size, crystal habits and thermal behaviour by transmission electron microscopy, x-ray diffraction and thermogravimetric analysis. The sizes and morphologies of magnesium hydroxide nanocrystals can be controlled mainly by the reaction conditions of temperature, alkaline-injection rate and the concentrations of reactants. The data show that the needle-like morphology is of size 10 x 100 nm~2, the lamellar shape 50 nm in diameter and estimated 10 nm in thickness, and the rod-like nanoparticles 4 mu m in length and 95 nm in diameter, respectively. All three kinds of nanoparticles are of hexagonal structures. The needle- and lamellar-like nanoparticles can be obtained by the reactions of alkaline injected into magnesium chloride solution at about 2 and 20 deg C, respectively, while the rod-like nanoparticles can be prepared by a slower alkaline-injection rate and lower aqueous ammonia concentration at about 10 deg C. The results obtained from the ethylene-vinyl acetate nanocomposites blended with the lamellar-like nanoparticles show that magnesium hydroxide nanocrystals possess higher flame retardant efficiency and mechanical reinforcing effect by comparison with common micrometre grade magnesium hydroxide particles.
机译:在复杂分散剂的存在下,通过碱与氯化镁的溶液沉淀反应合成了具有针状,层状和棒状纳米晶体不同形态结构的氢氧化镁纳米粒子,并在形态,粒度,晶体习性和热学方面进行了表征通过透射电子显微镜,X射线衍射和热重分析进行分析。氢氧化镁纳米晶体的尺寸和形态可以主要通过温度,碱注入速率和反应物浓度的反应条件来控制。数据显示,针状形态的尺寸为10 x 100 nm〜2,层状形状的直径为50 nm,估计厚度为10 nm,而棒状的纳米颗粒的长度为4μm,直径为95 nm,分别。三种纳米颗粒均具有六边形结构。针状和层状纳米颗粒可以通过分别在约2和20℃下将碱注入氯化镁溶液中的反应获得,而棒状纳米颗粒可以通过较慢的碱注入速率和较低的水相制备。在约10℃下氨浓度。从乙烯-乙酸乙烯酯纳米复合材料与层状纳米颗粒共混获得的结果表明,与常见的微米级氢氧化镁颗粒相比,氢氧化镁纳米晶体具有更高的阻燃效率和机械增强效果。

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