Interdisciplinary Applied Mathematics

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Kuo, T.    C.,    Cannon,    D. M.,    Shannon,    M. A., Bohn,    P.    W., and    Sweedler,    J. V.


(2003b). Hybrid three-dimensional nanofluidic/microfluidic devices using molecular gates. Sens. Actuators, A, 102:223-233.


Kuo, T. C., Sloan, L. A., Sweedler, J. V., and Bohn, P. W. (2001). Manipulating molecular transport through nanoporous membranes by control of electrokinetic flow: Effect of surface charge density and Debye length. Langmuir, 17:6298-6303.


Kusalik, P. G., Liden, F., and Svishchev, I. M. (1995). Calculation of the third virial coefficient for water. J. Chem. Phys., 103:10169-10175.


Kutter, J. P. (2000). Current developments in electrophoretic and chromatographic separation methods on microfabricated devices. Trends in Analytical Chemistry, 19:352-363.


Kwon, S. and Lee, L. P. (2001). Focal length control by microfabricated planar electrodes-based liquid lens(uPELL). Proc. 11th International Conference on Solid-State Sensors and Actuators, Eurosensors XV, Transducers 2001, pages 1348-1351.


Ladd, A. J. (1994a). Numerical simulations of particulate suspensions via a discretized lattice Boltzmann equation. Part 1. Theoretical foundation. J. Fluid Mech., 271:285-309.


Ladd, A. J. (1994b). Numerical simulations of particulate suspensions via a discretized lattice Boltzmann equation. Part 2. Numerical results. J. Fluid Mech., 271:311-339.


Lallemand, P. and Luo, L.-S. (2003). Theory of the lattice Boltzmann method: Acoustic and thermal properties in two and three dimensions. Phys. Rev. E, 68:036706.


Lancaster, P. and Salkauskas, K. (1981). Surface generated by moving least squares methods. Mathematics of Computation, 37:141-158.


Larrode, F. E., Housiadas, C., and Drossinos, Y. (2000). Slip-flow heat transfer in circular tubes. Int. J. Heat Mass Transfer, 43:2669-2680.


Lauga, E. and Stone, H. A. (2003). Effective slip in pressure-driven Stokes flow. J. Fluid Mech., 489:55-77.

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