[1] Squires T.M., Quake S.R.,
Microfluidics: Fluid Physics at the Nanoliter Scale,
Reviews of modern physics, 77(3): 977 (2005).
[2] Whitesides G.M.,
The Origins and the Future of Microfluidics,
Nature, 442(7101): 368-373 (2006).
[3] آزادیتبار م.، برزگر ف.، غضنفری م.ح.،
آنالیز پروفایل قطره نامتقارن روی سطوح افقی، شیبدار و دارای انحنا با استفاده از پردازش تصویر،
نشریه علمی علوم و فناوری رنگ،
(1)13: 9 تا 23 (1398).
[4] Sackmann E.K., Fulton A.L., Beebe D.J.,
The Present and Future Role of Microfluidics in Biomedical Research,
Nature, 507(7491): 181-189 (2014).
[6] Neuži P., Giselbrecht S., Länge K., Huang T.J., Manz A.,
Revisiting Lab-on-a-Chip Technology for Drug Discovery,
Nature reviews Drug discovery, 11(8): 620-632 (2012).
[8] Kawaguchi H.,
Functional Polymer Microspheres,
Progress in Polymer Science, 25(8): 1171-1210 (2000).
[9] Sista R.S., Eckhardt A.E., Srinivasan V., Pollack M.G., Palanki S., Pamula V.K.,
Heterogeneous Immunoassays using Magnetic Beads on a Digital Microfluidic Platform,
Lab on a Chip, 8(12): 2188-2196 (2008).
[11] Ng A.H., Choi K., Luoma R.P., Robinson J.M., Wheeler A.R.,
Digital Microfluidic Magnetic Separation for Particle-Based Immunoassays, Analytical chemistry, 84(20): 8805-8812 (2012).
[13] Vergauwe N., Vermeir S., Wacker J.B., Ceyssens F., Cornaglia M., Puers R., Gijs M.A., Lammertyn J., Witters D.,
A Highly Efficient Extraction Protocol for Magnetic Particles on a Digital Microfluidic Chip,
Sensors and Actuators B: Chemical, 196: 282-291 (2014).
[16] van Reenen A., de Jong A.M., den Toonder J.M., Prins M.W.,
Integrated Lab-on-Chip Biosensing Systems based on Magnetic Particle Actuation–a Comprehensive Review,
Lab on a Chip, 14(12): 1966-1986 (2014).
[19] Jönsson-Niedziółka M., Lapierre F., Coffinier Y., Parry S., Zoueshtiagh F., Foat T., Thomy V., Boukherroub R.,
EWOD Driven Cleaning of Bioparticles on Hydrophobic and Superhydrophobic Surfaces,
Lab on a Chip, 11(3): 490-496 (2011).
[22] Lu, H.-W., Bottausci F., Fowler J.D., Bertozzi A.L., Meinhart C.,
A Study of EWOD-Driven Droplets by PIV Investigation,
Lab on a Chip, 8(3): 456-461 (2008).
[23] Ma S., Sherwood J.M., Huck W.T., Balabani S.,
On the Flow Topology Inside Droplets Moving in Rectangular Microchannels,
Lab on a Chip, 14(18): 3611-3620 (2014).
[27] Tiwari A., Abraham J.,
Dissipative-Particle-Dynamics Model for Two-Phase Flows,
Physical Review E, 74(5): 056701 (2006).
[28] Cupelli C., Henrich B., Glatzel T., Zengerle R., Moseler M., Santer M.,
Dynamic Capillary Wetting Studied with Dissipative Particle Dynamics,
New Journal of Physics, 10(4): 043009 (2008).
[30] Wang Y., Chen S.,
Numerical Study on Droplet Sliding Across Micropillars,
Langmuir, 31(16): 4673-4677 (2015).
[31] Pal S., Lan C., Li Z., Hirleman E.D., Ma Y.,
Symmetry Boundary Condition in Dissipative Particle Dynamics,
Journal of Computational Physics, 292: 287-299 (2015).
[32] Ahmadlouydarab M., Lan C., Das A.K., Ma Y.,
Coalescence of Sessile Microdroplets Subject to a Wettability Gradient on a Solid Surface, Physical Review E, 94(3): 033112 (2016).
[34] Clark A.T., Lal M., Ruddock J.N., Warren P.B.,
Mesoscopic Simulation of Drops in Gravitational and Shear Fields,
Langmuir,
16: 6342 (2000).
[36] Louis A.A., Bolhuis P.G., Hansen J.P.,
Mean-Field Fluid Behavior of the Gaussian Core Model,
Physical Review E, 62: 7961 (2000).
[37] Rao
Q., Xia Y., Li J., McConnell J., Sutherland J., Li Z.,
A Modified Many-Body Dissipative Particle Dynamics Model for Mesoscopic Fluid Simulation: Methodology, Calibration, and Application for Hydrocarbon and Water,
Molecular Simulation,
47: 363-375 (2021).
[38] Hemeda A.A., Pal S., Mishra A., Torabi M., Ahmadlouydarab M., Li Z., Palko J., Ma Y.,
Effect of Wetting and Dewetting Dynamics on Atomic Force Microscopy Measurements,
Langmuir,
35: 13301-13310 (2019).
[39] Ahmadlouydarab M., Hemeda A.A., Ma Y.,
Six Stages of Microdroplet Detachment from Microscale Fibers,
Langmuir,
34: 198-204 (2018).
[40] Pagonabarraga I., Frenkel D.,
Dissipative Particle Dynamics for Interacting Systems,
J. Chem. Phys.,
115: 5015 (2001).
[43] Trofimov Y., Nies E.L.F., Michels M.A.J.,
Constant-Pressure Simulations with Dissipative Particle Dynamics, J. Chem. Phys.,
123: 144102 (2005).
[45] Espanol P., Warren P.,
Statistical Mechanics of Dissipative Particle Dynamics,
EPL (Europhysics Letters), 30(4): 191-196 (1995).
[46] Fan H., Striolo A.,
Nanoparticle Effects on the Water-Oil Interfacial Tension,
Physical Review E, 6(5): 051610 (2012).
[48] Hardin R.H., Sloane N.J.A., Smith W.D.,
Tables of Spherical Codes with Icosahedral Symmetry, Published Electronically at http://NeilSloane.com/icosahedral.codes/.
[49] Johnson K., Kendall K., Roberts A.,
Surface Energy and the Contact of Elastic Solids,
Proceedings of the royal society of London. A. mathematical and physical sciences, 324(1558): 301-313 (1971).
[51] Chen S., Phan-Thien N., Khoo B.C., Fan X.J.,
Flow around Spheres by Dissipative Particle Dynamics,
Physics of Fluids, 18(10): 103605 (2006).
[52] Yao X., Bai H., Ju J., Zhou D., Li J., Zhang H., Yang B., Jiang L.,
Running Droplet of Interfacial Chemical Reaction Flow,
Soft Matter, 8(22): 5988-5991 (2012).
[53] Bliznyuk O., Seddon J.R., Veligura V., Kooij E.S., Zandvliet H.J., Poelsema B.,
Directional Liquid Spreading Over Chemically Defined Radial Wettability Gradients,
ACS applied materials & interfaces, 4(8): 4141-4148 (2012).
[56] Visser D., Hoefsloot H., Iedema P.,
Comprehensive Boundary Method for Solid Walls in Dissipative Particle Dynamics,
Journal of Computational Physics, 205(2): 626-639 (2005).
[57] Subramanian R.S., Moumen N., McLaughlin J.B.,
Motion of a Drop on a Solid Surface Due to a Wettability Gradient,
Langmuir, 21(25): 11844-11849 (2005).