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Investigation of nanoparticle agglomerates properties using Monte Carlo simulations

机译:使用蒙特卡洛模拟研究纳米颗粒的团聚体性质

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By accounting for realistic interparticle interaction energy of fine dry nanoparticles, an off-lattice Monte Carlo (MC) simulation approach is used to gain insight into such properties of agglomerates of nanoparticles with primary sizes ranging from 10 nm to 100 nm. This novel numerical approach allows for assessment of the mechanical properties and morphological features of the agglomerates. An interesting outcome is that the fractal dimension depends on the material properties represented via interaction energy. The agglomerate porosity increases with increasing agglomerate mass and may approach unity. With increasing Hamaker constant and fixed particle size, the agglomerates are characterized by a lower fractal dimension, higher packing porosity, higher mechanical strength, larger agglomeration size, and lower crystalline fraction. For a fixed Hamaker constant, agglomerates of the smaller primary particles exhibit a more compact packing structure, higher mechanical strength, smaller agglomerate size, and higher crystalline fraction. The local structure analysis indicates that for a fixed Hamaker constant, there are more particles in crystalline structure within the agglomerates constituted by the smaller primary particles. Likewise, for a fixed primary particle size, a lower Hamaker constant allows particles to configure into more stable agglomerate structures, thus providing useful insights into agglomerate morphology. (C) 2016 The Society of Powder Technology Japan. Published by Elsevier B.V. and The Society of Powder Technology Japan. All rights reserved.
机译:通过考虑细干纳米粒子的现实粒子间相互作用能,使用了非晶格蒙特卡洛(MC)模拟方法来深入了解一级粒径为10 nm至100 nm的纳米粒子的团聚体的此类特性。这种新颖的数值方法可以评估附聚物的机械性能和形态特征。一个有趣的结果是,分形维数取决于通过相互作用能表示的材料特性。附聚物的孔隙度随附聚物质量的增加而增加,并且可能趋于一致。随着Hamaker常数的增加和固定粒径的增加,附聚物的特征是分形尺寸较小,堆积孔隙率较高,机械强度较高,附聚物较大且结晶分数较低。对于固定的Hamaker常数,较小的初级粒子的附聚物显示出更紧凑的堆积结构,较高的机械强度,较小的附聚物尺寸和较高的结晶度。局部结构分析表明,对于固定的Hamaker常数,由较小的初级颗粒构成的团聚体中晶体结构中的颗粒更多。同样,对于固定的初级粒度,较低的Hamaker常数可使颗粒配置为更稳定的团聚体结构,从而提供有关团聚体形态的有用见解。 (C)2016日本粉末技术学会。由Elsevier B.V.和日本粉末技术学会出版。版权所有。

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