Biomedical Engineering Reference
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[19] Scott, R. P. W., “Dispersion in Chromatography Columns,” Chrom-Ed Series , http://www.
chromatography-online.org/Dispersion/Rate-Theory/rs1.html.
[20] Martin, A. J. P., and R. L. M. Synge, Biochem. J ., Vol. 35, 1941, p. 1358.
[21] Schuler, M. L., and F. Kargi, Bioprocess Engineering: Basic Concepts , Upper Saddle River,
NJ: Prentice-Hall, 2002.
[22] Sarrut, N., S. Bouffet, F. Mittler, O. Constantin, P. Combette, J. Sudor, F. Ricoul, F. Vinet, J.
Garin, and C. Vauchier, “Enzymatic Digestion and Liquid Chromatography in Micro-Pillar
Reactors—Hydrodynamic Versus Electro-Osmotic Flow,” SPIE San Jose Photonics West,
MOEMS-MEMS 2005 , 2005.
[23] Kennedy, M. J., S. J. Stelick, S. L. Perkins, Li Cao, and C. A. Blatt, “Hydrodynamic Fo-
cusing with a Microlithographic Manifold: Controlling the Vertical Position of a Focused
Sample,” Microfluidics-Nanofluidics, Vol. 7, No. 4, 2009, pp. 569-578.
[24] Hairer, G., and M. J. Vellekoop, “An Integrated Flow-Cell Full Sample Stream Control,”
Microfluidics-Nanofluidics, , Online advanced article.
[25] Yamada, M., H. Nakashima, and M. Seki, “Pinched Flow Fractionation: Continuous Size
Separation of Particles Utilizing a Laminar Flow Profile in a Pinched Microchannel,” Anal.
Chem. , Vol. 76, 2004, pp. 5465-5471.
[26] Maenaka, H., M. Yamada, M. Yasuda, and M. Seki, “Continuous and Size-Dependent
Sorting of Emulsion Droplets Using Hydrodynamics in Pinched Microchannels,” Lang-
muir , 2008.
[27] Huang, L. R., E. C. Cox, R. H. Austin, and J. C. Sturm, “Continuous Particles Separation
Through Deterministic Lateral Displacement,” Science , Vol. 304, 2004, pp. 987-990.
[28] Davis, J. A., D. W. Inglis, K. J. Morton, D. A. Lawrence, L. R. Huang, S. Y. Chou, J. C.
Sturm, and R. H. Austin, “Deterministic Hydrodynamics: Taking Blood Apart,” PNAS ,
Vol. 103, No. 40, 2006, pp. 14779-14784.
[29] Inglis, D. W., J. A. Davis, R. H. Austin, and J. C. Sturm, “Critical Particle Size for Fraction-
ation by Deterministic Lateral Displacement,” Lab on a Chip , Vol. 6, 2006, pp. 655-658.
[30] Morton, K. J., K. Loutherback, D. W. Inglis, O. K. Tsui, J. C. Sturm, S. Y. Chou, and
R. H. Austin, “Crossing Microfluidic Streamlines to Lyse, Label and Wash Cells,” Lab
Chip , Vol. 8, 2008, pp. 1448-1453.
[31] Rubinow, S. I., and J. B. Keller, “The Transverse Force on a Spinning Sphere Moving in a
Viscous Fluid,” J. Fluid Mech ., Vol. 11, 1961, pp. 447-459.
[32] Leighton, D., and A. Acrivos, “The Lift on a Small Sphere Touching a Plane in the
Presence of a Simple Shear Flow,” J. Applied Mathematics and Physics , Vol. 36, 1985,
pp. 174-178.
[33] Cherukat, P., and J. B. McLaughlin, “The Inertial Lift on a Rigid Sphere in a Linear Shear
Flow Field Near a Flat Wall,” J. Fluid Mech ., Vol. 263, 1994, pp. 1-8.
[34] Park, J. -S., S. -H. Song, and H. -I. Jung, “Continuous Focusing of Microparticles Using
Inertial Lift Force and Vorticity Via Multi-Orifice Channels,” Lab Chip , Vol. 9, 2009,
pp. 939-948.
[35] Davit, Y., and P. Peyla, “Intriguing Viscosity Effects in Confined Suspensions: A Numerical
Study,” EPL , Vol. 83, No. 6, 2008, p. 64001.
[36] Di Carlo, D., D. Irimia, R. G. Tompkins, and M. Toner, “Continuous Inertial Focusing,
Ordering, and Separation of Particles In Microchannels,” PNAS , Vol. 104, No. 48, 2007,
pp. 18892-18897.
[37] Di Carlo, D., J. F. Edd, D. Irimia, R. G. Tompkins, and M. Toner, “Equilibrium Separation
and Filtration of Particles Using Differential Inertial Focusing,” Anal. Chem ., Vol. 80, No.
6, 2008, pp. 2204-2211.
[38] Asgar, A., S. Bhagat, S. S. Kuntaegowdanahalli, and I. Papautsky, “Continuous Particle
Separation in Spiral Microchannels Using Dean Flows and Differential Migration,” Lab.
Chip , Vol. 8, 2008, pp. 1906-1914.
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