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Evaporation of a Liquid Droplet in the Presence of a Nanoparticle

机译:纳米粒子存在下液滴的蒸发

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Nonequilibrium molecular dynamics (MD) simulations have been performed to understand the evaporation of a liquid droplet in the presence of a solid nanoparticle. The influence of solid–liquid interaction strength ( ε _( sl ) ) on the evaporation properties was addressed. The system consists of a solid nanoparticle (platinum) engulfed in a droplet (argon) in Argon vapor environment. After the equilibration of this nanoparticle embedded droplet with its vapor, the boundary of this system is heated continuously to evaporate the droplet. It is observed that the addition of a nanoparticle to the droplet resulted in a slower evaporation rate when compared to that of a pure droplet. It was found that the evaporation rate of the droplet is decreased with increasing solid–liquid interaction strength ( ε _( sl ) ) and those liquid atoms around the solid nanoparticle with higher ε _( sl ) are able to delay evaporation even at higher temperature owing to its decreased interfacial resistance. In order to analyze further on the vibrational coupling of the solid and liquid atoms, the vibrational density of states (VDOS) of the solid atoms is studied. It is observed that the DOS of the solid atoms exhibited a higher population in the lower frequency range with the highest peak observed for a lower value of ε _( sl ) . For low values of ε _( sl ) , we observe a decrease in the overlap between the VDOS of the solid atom and the interfacial liquid atoms. It is observed that for higher values of ε _( sl ) , the particle is able to retain a structured layer of liquid even at high temperature and also a higher heat input is necessitated to break the interaction strength of the liquid molecules around the solid nanoparticle, which makes it possible in delaying the complete evaporation of the droplet.
机译:已进行非平衡分子动力学(MD)模拟以了解在存在固体纳米粒子的情况下液滴的蒸发。解决了固液相互作用强度(ε_(sl))对蒸发性能的影响。该系统由在氩气环境中包裹在液滴(氩气)中的固态纳米颗粒(铂)组成。在该纳米颗粒嵌入的液滴与其蒸气平衡之后,连续加热该系统的边界以蒸发液滴。观察到,与纯液滴相比,向液滴中添加纳米颗粒导致较慢的蒸发速率。发现液滴的蒸发速率随着固液相互作用强度(ε_(sl))的增加而降低,并且即使在较高的温度下,具有较高ε_(sl)的固体纳米粒子周围的那些液体原子也能够延迟蒸发由于其降低的界面阻力。为了进一步分析固体和液体原子的振动耦合,研究了固体原子的状态振动密度(VDOS)。可以观察到,固体原子的DOS在较低的频率范围内显示出较高的填充率,并且在ε_(sl)较低的情况下观察到最高的峰。对于较低的ε_(sl)值,我们观察到固体原子的VDOS和界面液体原子的VDOS之间的重叠减小。观察到对于更高的ε_(sl)值,即使在高温下,该颗粒也能够保留液体的结构化层,并且还需要更高的热输入来破坏固体纳米颗粒周围的液体分子的相互作用强度。 ,这使得延迟液滴的完全蒸发成为可能。

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