Modeling the adhesion of spherical particles on rough surfaces at nanoscale

被引:3
作者
Zakeri, Manizhe [1 ]
Faraji, Javad [1 ]
机构
[1] Univ Tabriz, Fac Mech Engn, Tabriz, Iran
关键词
Morphology; Topography; Random distribution of asperities; Van der Waals force; Adhesion force; ATOMIC-FORCE MICROSCOPE; DER-WAALS FORCES; NANOPARTICLES MANIPULATION; IMPACT MODEL; CONTACT; DEFORMATION; ASPERITIES; ENERGY;
D O I
10.1016/j.ijadhadh.2023.103385
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
In this paper, the Van der Waals force acting between a spherical nanoparticle and a surface with random distribution of asperities has been simulated using the Johnson-Kendall-Roberts (JKR) contact mechanics model. To predict the adhesion force in different mediums and under different contact conditions, it is necessary to calculate the adhesion force in micro/nano systems. For this purpose, four different cases of surface roughness have been studied. The geometries of these rough surfaces have been defined taking into account the two key parameters of asperity radius and asperity height, and the necessary equations to determine the contact area and the magnitude of the adhesion force have been derived. Based on the geometries of the surface cap/trough, the interaction force between a spherical nanoparticle and a rough substrate has been obtained by applying Van der Waals theory. Then, the adhesion force for spherical nanoparticle has been modeled with respect to its height above the rough surface. Finally, the behavior of nanoparticles with different radii on four different rough substrates have been simulated and analyzed. The simulation results show that more precise adhesion forces can be obtained by modelling the surface roughness at the nanoscale. For small distances between spherical nanoparticle and the substrate, the adhesion force determined with the new roughness models is larger for rough substrates than for smooth ones.
引用
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页数:11
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共 43 条
[1]  
Ahmed M.M., 2022, Agri-Waste and Microbes for Production of Sustainable Nanomaterials, P231
[2]   Modelling of spontaneous adhesion phenomena in micro-electro-mechanical systems [J].
Ardito, Raffaele ;
Corigliano, Alberto ;
Frangi, Attilio .
EUROPEAN JOURNAL OF MECHANICS A-SOLIDS, 2013, 39 :144-152
[3]   Determination of the adhesion energy of MEMS structures by applying Weibull-type distribution function [J].
Bachmann, Daniel ;
Kuehne, Stephane ;
Hierold, Christofer .
SENSORS AND ACTUATORS A-PHYSICAL, 2006, 132 (01) :407-414
[4]   Contact analyses for anisotropic half-space coated with an anisotropic layer: Effect of the anisotropy on the pressure distribution and contact area [J].
Bagault, C. ;
Nelias, D. ;
Baietto, M. C. ;
Ovaert, T. C. .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2013, 50 (05) :743-754
[5]   Adhesive force model at a rough interface in the presence of thin water films: The role of relative humidity [J].
Bazrafshan, M. ;
de Rooij, M. B. ;
Schipper, D. J. .
INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2018, 140 :471-485
[6]   A MATHEMATICAL-MODEL OF THE IMPACT AND ADHESION OF MICROSPHERES [J].
BRACH, RM ;
DUNN, PF .
AEROSOL SCIENCE AND TECHNOLOGY, 1992, 16 (01) :51-64
[7]   An analytical elastic-perfectly plastic contact model [J].
Brake, M. R. .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2012, 49 (22) :3129-3141
[8]   Detecting van der Waals forces between a single polymer repeating unit and a solid surface in high vacuum [J].
Cai, Wanhao ;
Xiao, Chen ;
Qian, Linmao ;
Cui, Shuxun .
NANO RESEARCH, 2019, 12 (01) :57-61
[9]   The elastic-plastic contact behavior of rough surfaces with hard coatings [J].
Chen, Z. ;
Etsion, I. .
TRIBOLOGY INTERNATIONAL, 2019, 134 :435-442
[10]   Nanoscale surface roughness and particle adhesion on structured substrates [J].
Chow, T. S. .
NANOTECHNOLOGY, 2007, 18 (11)