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通过固着纳米悬浮微滴干燥过程中纳米颗粒沉积动力学的时间积分效应调整纳米颗粒沉积形态

Nanoparticle Deposition Morphology Adjustments by Effects of Time Integration of Nanoparticle Deposition Kinetics in Drying of a Sessile Nanosuspension Microdroplet.

作者信息

Wang Dongmin, Cheng Ping

机构信息

Shanghai Key Laboratory of Multiphase Flow and Heat Transfer in Power Engineering, School of Energy and Power Engineering, University of Shanghai for Science and Technology, Shanghai 200093, P. R. China.

MOE Key Laboratory for Power Machinery and Engineering, School of Mechanical Engineering, Shanghai Jiao Tong University, Shanghai 200240, P. R. China.

出版信息

Langmuir. 2025 Jul 22;41(28):18388-18402. doi: 10.1021/acs.langmuir.4c04808. Epub 2025 Jul 13.

Abstract

Nanoparticle deposition from a dried sessile microdroplet has important applications in printing and manufacturing. However, the various morphologies of the nanoparticle depositions in existing experiments could not be fully explained based on the traditional deposition criteria, which neglect the nanoparticle deposition kinetics effect. The mystery is resolved herein by simulating nanosuspension microdroplet evaporation based on the pseudopotential phase-change lattice Boltzmann method, incorporating the impact of the time integration of nanoparticle deposition kinetics and deposition front surface wettability. The simulated morphologies of the four typical deposition patterns ("coffee-ring", "coffee-eye", "dome-like" and uniform) on a hydrophilic surface and the tall conical "pillar" on a hydrophobic surface are shown in agreement with existing experimental data. The morphologies of these four typical nanoparticle deposition patterns formed on a hydrophilic surface are found to be governed by two dimensionless characteristic parameters: Peclet number and a new dimensionless parameter that describes the effects of time-integration of nanoparticle deposition kinetics on the deposition morphologies. A decrease in leads to a more apparent "dome-like" pattern formed inside the deposition; otherwise, a more "uniform" pattern is formed inside the deposition. On the other hand, an increase of Peclet number leads to a higher altitude deposition edge, and with a lower-altitude deposition edge on the contrary. This study also paves the way for adjusting evaporation-induced nanoparticles' self-assembly morphologies at a much lower cost and in an easier approach, without traditionally applying sophisticated external fields or multicomponent additives.

摘要

来自干燥固着微滴的纳米颗粒沉积在印刷和制造领域有着重要应用。然而,基于传统沉积标准无法完全解释现有实验中纳米颗粒沉积的各种形态,传统标准忽略了纳米颗粒沉积动力学效应。本文通过基于伪势相变格子玻尔兹曼方法模拟纳米悬浮微滴蒸发来解决这一谜团,该方法考虑了纳米颗粒沉积动力学的时间积分和沉积前沿表面润湿性的影响。模拟出的亲水性表面上四种典型沉积图案(“咖啡环”“咖啡眼”“穹顶状”和均匀状)以及疏水性表面上的高锥形“柱体”形态与现有实验数据一致。发现在亲水性表面上形成的这四种典型纳米颗粒沉积图案的形态受两个无量纲特征参数控制:佩克莱数和一个新的无量纲参数,该参数描述了纳米颗粒沉积动力学时间积分对沉积形态的影响。该参数减小会导致沉积内部形成更明显的“穹顶状”图案;否则,沉积内部会形成更“均匀”的图案。另一方面,佩克莱数增加会导致沉积边缘高度更高,反之则沉积边缘高度更低。这项研究还为以更低成本、更简便的方式调节蒸发诱导的纳米颗粒自组装形态铺平了道路,而无需传统地施加复杂的外部场或多组分添加剂。

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