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常温下水蒸气的异常凝结。

Abnormal condensation of water vapour at ambient temperature.

作者信息

Guo Chenchen, Yang Kun, Qin Hairong, Zhu Yong, Chen Min, Lü Yongjun

机构信息

School of Physics, Beijing Institute of Technology, Beijing 100081, China.

Changping School Attached to Beijing Normal University, Beijing 102206, China.

出版信息

Phys Chem Chem Phys. 2024 Mar 13;26(11):8784-8793. doi: 10.1039/d3cp05628g.

Abstract

The homogeneous condensation of water vapor at ambient temperature is studied using molecular dynamics simulation. We reveal that there is a droplet size at the nanoscale where water droplets can be stabilized in the condensation process. Our simulations show that the growth of water droplets is dominated by collision and coagulation between small water droplets after nucleation. This process is found to be accompanied by exceptionally fast evaporation such that droplet growth is balanced by evaporation when water droplets grow to a critical size, approximately 12.5 Å in radius, reaching a stable size distribution. The extremely high evaporation rate is attributed to the curvature dependence of surface tension. Surface tension shows a significant decrease with decreasing droplet size below 20 Å, which causes the total free energy of nanoscaled water droplets to rise after collision and coagulation. Consequently, water droplets have to shrink fast evaporation. The curvature dependence of surface tension is related to the dielectric ordering of water molecules near the surface of water droplets. Owing to fast evaporation, secondary condensation occurs, and many small water clusters form, ultimately exhibiting a bimodal distribution of water-droplet size.

摘要

利用分子动力学模拟研究了环境温度下水蒸气的均匀凝结。我们发现,在纳米尺度上存在一个液滴尺寸,在此尺寸下水滴在凝结过程中可以稳定存在。我们的模拟表明,水滴的生长在成核后由小水滴之间的碰撞和凝聚主导。发现这个过程伴随着异常快速的蒸发,以至于当水滴生长到临界尺寸(半径约为12.5 Å)时,蒸发与水滴生长达到平衡,从而达到稳定的尺寸分布。极高的蒸发速率归因于表面张力对曲率的依赖性。当液滴尺寸减小到20 Å以下时,表面张力显著降低,这导致纳米级水滴在碰撞和凝聚后总自由能升高。因此,水滴必须通过快速蒸发来收缩。表面张力对曲率的依赖性与水滴表面附近水分子的介电有序性有关。由于快速蒸发,会发生二次凝结,形成许多小水团簇,最终呈现出水滴尺寸的双峰分布。

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