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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Effects of Temperature and Ionic Concentration on Nanodroplet Electrocoalescence
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Effects of Temperature and Ionic Concentration on Nanodroplet Electrocoalescence

机译:温度和离子浓度对纳米射频电晕脉的影响

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Droplet electrocoalescence is of interest for various applications such as petroleum dehydration, electrospray ionization, and surface self-cleaning. Here, the effects of temperature and ionic concentration on nanodroplet electrocoalescence are investigated by molecular dynamics simulation. The results show that low ionic concentration rapidly drives ions towards water clusters and leads to dipole polarization of droplets. With an increase of ionic concentration, the particle particle interaction is enhanced, but the mobility of free water molecules and salt ions is curbed by hydration and ion pairs, which then slows the electrocoalescence. Low temperature accelerates the rotation of water molecules but does not enhance the mobility of ions. Alternatively, high temperature not only breaks the self-assembly of water molecules along the electric field direction but also helps ions to overcome the electrostatic barrier between particles. The latter effect promotes dipole polarization to compensate for the shortcoming of less orientation polarization. The combined effects of ion concentration and temperature are investigated and unified by droplet conductivity from the microscopic point of view. The conductivity increases with the increase in temperatures and ionic concentrations. We confirm that the accurate control of droplet electrocoalescence can be achieved by a suitable combination of temperature and ionic concentration.
机译:液滴electrocoalescence是用于各种应用,如石油脱水,电喷雾电离,并且表面自洁的兴趣。在此,温度和离子浓度对纳米液滴electrocoalescence的效果是通过分子动力学模拟研究。结果表明,低离子浓度迅速驱动朝向水簇,并导致液滴的偶极极化离子。随着离子浓度的,所述粒子粒子相互作用增强,但自由水分子和盐离子的迁移率是通过水合和离子对,然后减慢electrocoalescence遏制。低温加速水分子的旋转,但不提高离子的迁移率。可替代地,高温不仅打破了自组装沿电场方向的水分子,但也有助于离子克服颗粒之间的静电屏障。后者的效果促进了偶极极化来补偿较少定向极化的缺点。离子浓度和温度的综合作用进行调查,并从微观角度通过液滴电导率统一。电导率与温度和离子浓度的增加而增加。我们确认,液滴electrocoalescence的精确控制可以通过温度和离子浓度的适当组合来实现。

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