P. G. de Gennes, Scaling Concepts in Polymer Physics, 1979, Cornell University Press, Ithaca, NY. | |
T. Odijk, On the statistics and dynamics of confined or entangled stiff polymers, Macromolecules, 1983, 16, 1340-1344. CrossRef | |
L. Yang, I. Akhatov, M. Mahinfalah, and B. Z. Jang, Nano-fabrication: A review, J. Chin. Inst. Eng., 2007, 30, 441-446. CrossRef | |
B. D. Gates, Q. Xu, M. Stewart, D. Ryan, C. G. Willson, and G. M. Whitesides, New approaches to nanofabrication: Molding, printing, and other techniques, Chem. Rev., 2005, 105, 1171-1196. CrossRef | |
K. Ariga and H. S. Nalwa, Bottom-up Nanofabrication: Supramolecules, Self-Assemblies and Organized Films, 2006, American Scientific Publishers. | |
I. Teraoka, Po lymer Solutions: An Introduction to Physical Properties, 2002, Wiley-Interscience. | |
S. F. Sun, Physical Chemistry of Macromolecules: Basic Principles and Issues, 2004, Wiley-Interscience. | |
D. C. Morse, Viscoelasticity of Concentrated Isotropic Solutions of Semiflexible Polymers. 2. Linear Response, Macromolecules, 1998, 31, 7044-7067. | |
G. K. Batchelor, An Introduction to Fluid Dynamics, 1967, Cambridge University Press, Cambridge, England. | |
J. O. Tegenfeldt, C. Prinz, H. Cao, S. Chou, W. W. Reisner, R. Riehn, Y. M. Wang, E. C. Cox, J. C. Sturm, P. Silberzan, and R. H. Austin, The dynamics of genomic-length DNA molecules in 100-nm channels, Proc. Nat. Acad. Sci. USA, 2004, 101, 10979-10983. CrossRef | |
W. Reisner, K. J. Morton, R. Riehn, Y. M. Wang, Z. Yu, M. Rosen, J. C. Sturm, S. Y. Chou, E. Frey, and R. H. Austin, Statics and dynamics of single DNA molecules confined in nanochannels, Phys. Rev. Lett. 2005, 94, 196101 (1-4). CrossRef | |
C. H. Reccius, J. T. Mannion, J. D. Cross, and H. G. Craighead, Compression and free expansion of single DNA Molecules in nanochannels. Phys. Rev. Lett., 2005, 95, 268101 (1-4). CrossRef | |
P.-K. Lin, C.-C. Fu, Y.-L. Chen, Y.-R. Chen, P.-K. Wei, C. H. Kuan, and W. S. Fann, Static conformation and dynamics of single DNA molecules confined in nanoslits, Phys. Rev. E, 2007, 76, 011806 (1-8). CrossRef | |
J. D. Cross, E. A. Strychalski, and H. G. Craighead, Size-dependent DNA mobility in nanochannels, J. App. Phys., 2007, 102, 024701 (1-5). CrossRef | |
A. Balducci, P. Mao, J. Han, and P. S. Doyle, Double-stranded DNA diffusion in slitlike nanochannels, Macromolecules, 2006, 39, 6273-6281. CrossRef | |
D. J. Bonthuis, C. Meyer, D. Stein, and C. Dekker, Conformation and dynamics of DNA Confined in slitlike nanofluidic channels, Phys. Rev. Lett. 2008, 101, 108303 (1-4). CrossRef | |
T, Odijk, Scaling theory of DNA confined in nanochannels and nanoslits, Phys. Rev. E, 2008, 77, 060901 (1-4). CrossRef | |
L. H. Thamdrup, A. Klukowska, and A. Kristensen, Stretching DNA in polymer nanochannels fabricated by thermal imprint in PMMA, Nanotechnology, 2008, 19, 125301 (1-6). CrossRef | |
K. D. Park, S. W. Lee, N. Takama, T. Fujii, and B. J. Kim, Arbitrary-shaped nanochannels fabricated by polymeric deformation to achieve single DNA stretching, Microelec. Eng., 2009, 86, 1385-1388. CrossRef | |
Y. Chen and M. Muthukumar, Free energy of a molecule in a confined domain, Phys. Rev. B, 1986, 33, 6187-6190. CrossRef | |
F. Wagner, G. Lattanzi, and E. Frey, Conformations of confined biopolymers, Phys. Rev. E, 2007, 75, 050902(R) (1-4). CrossRef | |
Y. Yang, T. W. Burkhardt, and G. Gompper, Free energy and extension of a semiflexible polymer in cylindrical confining geometries, Phys. Rev. E, 2007, 76, 011804 (1-7). CrossRef | |
A. Arnold, B. Bozorgui, D. Frenkel, B.-Y. Ha, and S. Jun, Unexpected relaxation dynamics of a self-avoiding polymer in cylindrical confinement, J. Chem. Phys., 2007, 127, 164903 (1-9). CrossRef | |
T. Sakaue, Semiflexible polymer confined in closed spaces, Macromolecules, 2007, 40, 5206-5211. CrossRef | |
L. I. Klushin, A. M. Skvortsov, H.-P. Hsu, and K. Binder, Dragging a polymer chain into a nanotube and subsequent release, Macromolecules, 2008, 41, 5890-5898. CrossRef | |
R. M. Jendrejack, D. C. Schwartz, M. D. Graham, and J. J. dePablo, Effect. of confinement on DNA dynamics in microfluidic devices, J. Chem. Phys., 2003, 119, 1165-1173. CrossRef | |
R. M. Jendrejack, D. C. Schwartz, J. J. dePablo, and M. D. Graham, Shear induced migration in flowing polymer solutions: simulation of long chain deoxyribose nucleic acid in microchannels, J. Chem. Phys., 2004, 120, 2513-2529. CrossRef | |
R. M. Jendrejack, E. T. Dimalanta, D. C. Schwartz, M. D. Graham, and J. J. dePablo, DNA dynamics in a microchannel, Phys. Rev. Lett., 2003, 91, 038102 (1-4). CrossRef | |
R. B. Bird, C. F. Curtiss, R. C. Armstrong, and O. Hassager, Dynamics of Polymeric Liquids, 1987, Wiley, New York. | |
M. Fixman, Construction of Langevin forces in the simulation of hydrodynamic interaction, Macromolecules, 1986, 19, 1204-1207. CrossRef | |
T. Das, S. Das, and S. Chakraborty, Influences of streaming potential on cross stream migration of flexible polymer molecules in nanochannel flows, J. Chem. Phys., 2009, 131, 1 (1-12). | |
M. X. Fernandes, M. L. Huertas, M. A. R. B. Castanho, and J. G. de la Torre, Conformation and dynamic properties of a saturated hydrocarbon chain confined in a model membrane: a Brownian dynamics simulation, Biochim. Biophys. Acta, 2000, 1463, 131-141. CrossRef | |
R. J. Hunter, Zeta Potential in Colloid Science, 1981, Academic, London. | |
K. S. Schmitz, Macroions in Solutions and Colloidal Suspension, 1993, VCH, New York. | |
H. Ohshima, T. W. Healy, and L. R. White, Accurate analytic expressions for the surface charge density/surface potential relationship and double-layer potential distribution for a spherical colloidal particle, J. Coll. Int. Sci., 1982, 90, 17-26. CrossRef | |
Y. C. Lin and C. P. Jen, Mechanism of hydrodynamic separation of biological objects in microchannel devices, Lab Chip, 2002, 2, 164-169. CrossRef | |
S. Das and S. Chakraborty, Electrokinetic separation of charged macromolecules in nanochannels within the continuum regime: Effects of wall interactions and hydrodynamic confinements, Electrophoresis, 2008, 29, 1115-1124. CrossRef | |
S. Das and S. Chakraborty, Transport and Separation of Charged Macromolecules under Nonlinear Electromigration in Nanochannels, Langmuir, 2008, 24, 7704-7710. CrossRef | |
J. Israelachvili, Intermolecular and Surface Forces. 2 ed., 2003, Academic Press, London. | |
A. Majumdar and I. Mezic, Stability regimes of thin liquid films, Microsc. Thermophys. Eng., 1998, 2, 203-213. CrossRef | |
S. Chakraborty and S. Das, Streaming-field-induced convective transport and its influence on the electroviscous effects in narrow fluidic confinement beyond the Debye-Hückel limit, Phys. Rev. E, 2008, 77, 037303 (1-4). CrossRef | |
J. K. G. Dhont, Thermodiffusion of interacting colloids, J. Chem. Phys., 2004, 120, 1642-1653. CrossRef | |
R. Khare, M. D. Graham, and de Pablo, Cross-stream migration of flexible molecules in a nanochannel, Phys. Rev. Lett., 2006, 96, 226405 (1-4). | |
P. Tian and G. D. Smith, Translocation of a polymer chain across a nanopore: A Brownian dynamics simulation study, J. Chem. Phys., 2003, 119, 11475-11483. CrossRef | |
J. Wang and H. Gao, A generalized bead-rod model for Brownian dynamics simulations of wormlike chains under strong confinement, J. Chem. Phys., 2005, 123, 084906 (1-13). CrossRef | |
J. P. Hernández-Ortiz, J. J. de Pablo, and M. D. Graham, Fast computation of many-particle hydrodynamic and electrostatic interactions in a confined geometry, Phys. Rev. Lett., 2007, 98, 140602 (1-4). CrossRef | |
Y.-L. Chen, H. Ma, M. D. Graham, and J. J. de Pablo, Modeling DNA in confinement: A comparison between the Brownian Dynamics and Lattice Boltzmann method, Macromolecules, 2007, 40, 5978-5984. CrossRef | |
I. Huopaniemi, K. Luo, T. Ala-Nissila, and S.-C. Ying, Polymer translocation through a nanopore under a pulling force, Phys. Rev. E, 2007, 75, 061912(1-6). CrossRef | |
D. Wei, W. Yang, X. Jin, and Q. Liao, Unforced translocation of a polymer chain through a nanopore: The solvent effect, J. Chem. Phys., 2007, 126, 204901 (1-8). CrossRef | |
K. Luo, T. Ala-Nissila, S.-C. Ying, and A. Bhattacharya, Translocation dynamics with attractive nanopore-polymer interactions, Phys. Rev. E, 2008, 78, 061918 (1-8). CrossRef | |
K. Luo, T. Ala-Nissila, S.-C. Ying, and A. Bhattacharya, Sequence dependence of DNA translocation through a nanopore, Phys. Rev. Lett., 2008, 100, 058101 (1-4). CrossRef | |
W. Mobius, E. Frey, and U. Gerland, Spontaneous unknotting of a polymer confined in a nanochannel, Nano Lett., 2008, 8, 4518-4522. CrossRef | |
L. Huang and D. E. Marakov, The rate constant of polymer reversal inside a pore, J. Chem. Phys., 2008, 128, 114903 (1-9). CrossRef | |
P. Prinsen, L. T. Fang, A. M. Yoffe, C. M. Knobler, and W. M. Gelbart, The force acting on a polymer partially confined in a tube, J. Phys. Chem. B, 2009, 113, 3872-3879. | |
V. Kuppa and E. Manias, Dynamics of poly (ethylene oxide) in nanoscale confinements: A computer simulations perspective, J. Chem. Phys., 2003, 118, 3421-3429. CrossRef | |
G. A. Schwartz, R. Bergman, and J. Swenson, Relaxation dynamics of a polymer in a 2D confinement, J. Chem. Phys., 2004, 120, 5736-5744. CrossRef | |
Y. Rabin and M. Tanaka, DNA in nanopores: Counterion condensation and coion depletion, Phys. Rev. Lett., 2005, 94, 148103 (1-4). CrossRef | |
A. Aksimentiev, J. B. Heng, G. Timp, and K. Schulten, Microscopic kinetics of DNA translocation through synthetic nanopores, Biophys. J., 2004, 87, 2086-2097. CrossRef | |
E. Y. Lau, F. C. Lightstone, and M. E. Colvin, Dynamics of DNA encapsulated in a hydrophobic nanotube, Chem. Phys. Lett., 2005, 412, 82-87. CrossRef | |
S. T. Cui, Molecular dynamics study of single-stranded DNA in aqueous solution confined in a nanopore, Mol. Phys., 2004, 102, 139-146. CrossRef | |
J. B. Heng, A. Aksimentiev, C. Ho, P. Marks, Y. V. Grinkova, S. Sligar, K. Schulten, and G. Timp, The electromechanics of DNA in a synthetic nanopore, Biophys. J., 2006, 90, 1098-1106. CrossRef | |
B. Luan and A. Aksimentiev, Electro-osmotic screening of the DNA charge in a nanopore, Phys. Rev. E, 2008, 78, 021912 (1-4). CrossRef | |
D. I. Dimitrov, A. Milchev, K. Binder, L. I. Klushin, and A. M. Skvortsov, Universal properties of a single polymer chain in slit: Scaling versus molecular dynamics simulations, J. Chem. Phys., 2008, 128, 234902 (1-11). CrossRef | |
F. Höfling, T. Munk, E. Frey, and T. Franosch, Entangled dynamics of a stiff polymer, Phys. Rev. E, 2008, 77, 060904(R) (1-4). CrossRef | |
Y. Jung, S. Jun, and B.-Y. Ha, Self-avoiding polymer trapped inside a cylindrical pore: Flory free energy and unexpected dynamics, Phys. Rev. E, 2009, 79, 061912 (1-8). CrossRef | |
S. Matysiak, A. Montesi, M. Pasquali, A. B. Kolomeisky, and C. Clementi, Dynamics of polymer translocation through nanopores: Theory meets experiment, Phys. Rev. Lett., 2006, 96, 118103 (1-4). CrossRef | |
S. Melchionna, M. Bernaschi, M. Fyta, E. Kaxiras, and S. Succi, Quantized biopolymer translocation through nanopores: Departure from simple scaling, Phys. Rev. E, 2009, 79, 030901(R) (1-4). CrossRef | |
M. G. Gauthier and G. W. Slater, Nondriven polymer translocation through a nanopore: Computational evidence that the escape and relaxation processes are coupled, Phys. Rev. E, 2009, 79, 021802 (1-7). CrossRef | |
M. Fyta, S. Melchionna, S. Succi, and E. Kaxiras, Hydrodynamic correlations in the translocation of a biopolymer through a nanopore: Theory and multiscale simulations, Phys. Rev. E, 2008, 78, 036704 (1-7). CrossRef | |
Y. Wang and I. Teraoka, Structures and thermodynamics of nondilute polymer solutions confined between parallel plates, Macromolecules, 2000, 33, 3478-34484. CrossRef | |
P. Cifra and I. Teraoka, Partitioning of polymer chains in solution with a square channel: lattice Monte Carlo simulations, Polymer, 2002, 43, 2409-2415. CrossRef | |
I. Teraoka, P. Cifra, and Y. Wang, Polymer chains in good solvent facing impenetrable walls: what is the distance to the wall in lattice Monte Carlo simulations, Coll. Surf. A, 2002, 206, 299-303. CrossRef | |
Y. Wang, Q. Lin, P. Cifra, and I. Teraoka, Partitioning of bimodal polymer mixtures into a slit: effect of slit width, composition and pore-to-bulk volume ratio, Coll. Surf. A, 2002, 206, 305-312. CrossRef | |
T. Bleha and P. Cifra, Free energy and confinement force of macromolecules in a slit at full equilibrium with a bulk solution, Polymer, 2003, 45, 3745-3752. | |
I. Teraoka and Y. Wang, Computer simulation studies on overlapping polymer chains confined in narrow channels, Polymer, 2004, 45, 3835-3843. CrossRef | |
R. Bundschuh and U. Gerland, Coupled dynamics of RNA folding and nanopore translocation, Phys. Rev. Lett., 2005, 95, 208104 (1-4). CrossRef | |
A. Cacciuto and E. Luijten, Confinement-driven translocation of a flexible polymer, Phys. Rev. Lett., 2006, 96, 238104 (1-4). CrossRef | |
J. Kalb and B. Chakraborty, Single polymer confinement in a tube: Correlation between structure and dynamics, J. Chem. Phys., 2009, 130, 025103 (1-9). CrossRef | |
W. Lim, S. Y. Ng, C. Lee, Y. P. Feng, and J. R. C. van der Maarel, Conformational response of supercoiled DNA to confinement in a nanochannel, J. Chem. Phys., 2008, 129, 165102 (1-6). CrossRef | |
M. G. Gauthier and G. W. Slater, A Monte Carlo algorithm to study polymer translocation through nanopores. I. Theory and numerical approach, J. Chem. Phys., 128, 065103 (1-8). CrossRef | |
T. Cui, J. Ding, and J. Z. Y. Chen, Dynamics of a self-avoiding polymer chain in slit, tube, and cube confinements, Phys. Rev. E, 2008, 78, 061802 (1-7). CrossRef | |
K. Luo, S. T. T. Ollila, I. Huopaniemi, T. Ala-Nissila, P. Pomorski, M. Karttunen, S.-C. Ying, and A. Bhattacharya, Dynamical scaling exponents for polymer translocation through a nanopore, Phys. Rev. E, 2008, 78, 050901(R) (1-4). CrossRef | |
O. B. Usta, A. J. C. Ladd, and J. E. Butler, Lattice-Boltzmann simulations of the dynamics of polymer solutions in periodic and confined geometries, J. Chem. Phys., 2005, 122, 094902 (1-11). CrossRef | |
O. B. Usta, J. E. Butler and A. J. C. Ladd, Flow-induced migration of polymers in dilute solution, Phys. Fluids, 2006, 18, 031703 (1-4). CrossRef | |
O. B. Usta, J. E. Butler and A. J. C. Ladd, Transverse migration of a confined polymer driven by an external force, Phys. Rev. Lett., 2007, 98, 098301 (1-4). CrossRef | |
S. Reboux, F. Capuani, N. Gonzlez-Segredo, and D. Frenkel, Lattice-Boltzmann simulations of ionic current modulation by DNA translocation, J. Chem. Theory Comput., 2006, 2, 495-503. CrossRef | |
Y. Xie, H. Yu, H. Yang1, Y. Wang, X. Zhang and Q. Shi, Monte Carlo study on spontaneous recoil of confined DNA chain, Chin. J. Chem. Phys., 2008, 21, 281-285. CrossRef | |
D. A. Fedosov, G. E. Karniadakis, and B. Caswell, Dissipative particle dynamics simulation of depletion layer and polymer migration in micro- and nanochannels for dilute polymer solutions, J. Chem. Phys., 2008, 128, 144903 (1-14). CrossRef | |
J. A. Millan, W. Jiang, M. Laradji, and Y. Wang, Pressure driven flow of polymer solutions in nanoscale slit pores, J. Chem. Phys., 2007, 126, 124905 (1-9). CrossRef | |
J. A. Milan and M. Laradji, Cross-stream migration of driven polymer solutions in nanoscale channels: A numerical study with generalized dissipative particle dynamics, Macromolecules, 2009, 42, 803-810. CrossRef | |
E. Moeendarbary, T. Y. Ng, H. Pan, and K. Y. Lam, Migration of DNA molecules through entropic trap arrays: a dissipative particle dynamics study, Microfluid. Nanofluid., DOI 10.1007/s10404-009-0463-0. | |
Z. Ye, J. Cai, H. Liu, and Y. Hu, Density and chain conformation profiles of square-well chains confined in a slit by density-functional theory, J. Chem. Phys., 2005, 123, 194902 (1-8). CrossRef | |
Z. Ye, H. Chen, J. Cai, H. Liu, and Y. Hu, Density functional theory of homopolymer mixtures confined in a slit, J. Chem. Phys., 2006, 125, 124705 (1-7). CrossRef | |
Z. Ye, H. Chen, H. Liu, Y. Hu, and J. Jiang, Density functional theory for copolymers confined in a nanoslit, J. Chem. Phys., 2007, 126, 134903 (1-6). CrossRef | |
S. Asakura and F. Oosawa, On interaction between two bodies immersed in a solution of macromolecules J. Chem. Phys., 1954, 22, 1255-1256. | |
J. L. Barrat and J. P. Hausen, Basic Concepts for Simple and Complex Liquids, 2003, Cambridge University Press, Cambridge. | |
A. Vrij, Polymers at interfaces and the interactions in colloidal dispersions, Pure. Appl. Chem., 1976, 48, 471-483. | |
E. J. Meijer and D. Frenkel, Colloids dispersed in polymer solutions. A computer simulation syudy, J. Chem. Phys., 1994, 100, 6873-6887. CrossRef | |
W. Poon, Colloids as big atoms, Science, 2004, 304, 830-831. CrossRef | |
K. E. Eboigbodin, J. R. A. Newton, A. F. Routh, and C. A. Biggs, Role of nonadsorbing polymers in bacterial aggregation, Langmuir, 2005, 21, 12315-12319. CrossRef | |
B. Neu and H. J. Meiselman, Depletion-Mediated Red Blood Cell Aggregation in Polymer Solutions, Biophys. J., 2002, 83, 2482-2490. CrossRef | |
D, Marenduzzo, K. Finan, and P. R. Cook, The depletion attraction: an underappreciated force driving cellular organization, J. Cell Biol., 2006, 175, 681-686. CrossRef | |
A. A. Gorbunov and A. M. Skvortsov, Statistical properties of confined macromolecules, Adv. Coll. Int. Sci., 1995, 62, 31-108. CrossRef | |
I. Teraoka, Polymer solutions in confining geometries, Prog. Polym. Sci. 1996, 21, 89-149. CrossRef | |
P. Cifra, T. Bleha and A. Romanov, Monte-Carlo calculations of equilibrium partitioning of flexible chains into pores, Polymer, 1988, 29, 1664-1668. CrossRef | |
T. Bleha, P. Cifra, and F. E. Karasz, The effects of concentration on partitioning of flexible chains into pores, Polymer, 1990, 31, 1321-1327. CrossRef | |
T. Bleha and F. E. Karasz, Depletion potential between two attractive plates mediated by polymers, Polymer, 2005, 46, 10996-11002. CrossRef | |
E. Eisenriegler and R. Maassen, Center-of-mass distribution of a polymer near a repulsive wall, J. Chem. Phys., 2002, 116, 449-450. CrossRef | |
H.-P. Hsu and P. Grassberger, Polymers confined between two parallel plane walls, 2004, 120, 2034-2041. | |
S. B. Chen, Monte Carlo simulations of conformations of chain molecules in a cylindrical pore, J. Chem. Phys., 2005, 123, 074702 (1-7). CrossRef | |
J. P. Hernández-Ortiz, H. Ma, J. J. de Pablo, and M. D. Graham, Cross-stream-line migration in confined flowing polymer solutions: Theory and simulation, J. Chem. Phys., 2006, 18, 123101 (1-12). | |
J. E. Butler, O. B. Usta, R. Kekre, and A. J. C. Ladd, Kinetic theory of a confined polymer driven by an external force and pressure-driven flow, Phys. Fluids, 2007, 19, 113101 (1-14). CrossRef | |
Y. Wang, G. H. Peters, F. Y. Hansen, and O. Hassager, Equilibrium partitioning of macromolecules in confining geometries: Improved universality with a new molecular size parameter, J. Chem. Phys., 2008, 128, 124904 (1-13). CrossRef | |
Y. Wang, G. H. Peters, F. Y. Hansen, and O. Hassager, Proof of the identity between the depletion layer thickness and half the average span for an arbitrary polymer chain, J. Chem. Phys., 2008, 129, 074904 (1-8). CrossRef | |
E. F. Casassa, Distribution of random-flight polymer chains in solution near a barrier, Macromolecules, 1984, 17, 601-604. CrossRef | |
E. F. Casassa, Distribution of star-branched random-flight chains in solution near a plane barrier, Macromolecules, 1995, 28 (23), pp 7756-7763. CrossRef | |
E. F. Casassa, Distribution of Random-Flight Chains in Solution near Convex Barriers, Macromolecules, 1997, 30, 1469-1478. CrossRef | |
D. Kleshchanok, R. Tuinier and P. R. Lang, Direct measurements of polymer-induced forces, J. Phys.: Condens. Matt., 2008, 25, 073101 (1-25). | |
A. Sikorski and I. Żukowska, Structure of polymer films in adsorbing slit: A computer simulation study, Coll. Surf. A, 2008, 321, 244-248. CrossRef | |
A. Jaeckel and J. Dayantis, Concentration profiles of confined chains having absorbing and reflecting statistics, Polymer, 1996, 37, 3447-3449. CrossRef | |
Z. Chen and F. A. Escobedo, Influence of polymer architecture and polymer-wall interaction on the adsorption of polymers into a slit-pore, Phys. Rev. E, 2004, 69, 021802 (1-10). CrossRef | |
P. Romiszowski and A. Sikorski, Star-Branched Polymers in an Adsorbing Slit. A Monte Carlo Study, J. Chem. Phys., 2005, 123, 104905. CrossRef | |
P. Romiszowski and A. Sikorski, Dynamics of polymer chains in confined space. A computer simulation study, Physica A, 2005, 357, 356-363. CrossRef | |
P. Romiszowski and A. Sikorski, The Structure of star-branched chains in a confined space, Monatshefte für Chemie, 2006, 137, 969-976. CrossRef | |
P. Romiszowski and A. Sikorski, The structure of polymer chains in confinement. A Monte Carlo study, J. Mol. Model. 2009, 15, 681-686. CrossRef | |
L. He, K. L. Yung, Y. Xu, Y. W. Shen, The effect of surface features on nanorheology of LCP melts in nanochannels by MD Simulation, J. Tribology, 2007, 129, 171-176. CrossRef | |
K. L. Yung, L. He, Y. Xu, Y. W. Shen, Study of surface conditions and shear flow of LCP melts in nanochannels through molecular dynamics simulation, Polymer, 2006, 47, 4454-4460. CrossRef | |
P. K. Mishra and S. Kumar, Effect of confinement on coil-globule transition, J. Chem. Phys., 2004, 121, 8642-8646. CrossRef | |
P. K. Mishra, D. Giri, S. Kumar, and Y. Singh, Does a surface attached globule phase exist?, Physica A, 2003, 318, 171-178. CrossRef | |
R. Rajesh, D. Dhar, D. Giri, S. Kumar, and Y. Singh, Adsorption and collapse transitions in a linear polymer chain near an attractive wall, Phys. Rev. E, 2002, 65, 056124 (1-7). CrossRef | |
J. R. Maury-Evertsz, L. A. Estevez, and G. E. Lopez, Equilibrium properties of confined single-chain homopolymers, J. Chem. Phys., 2003, 119, 9925-9932. CrossRef | |
E. H. Feng and G. H. Fredrickson, Confinement of equilibrium polymers: A field-theoretic model and mean-field solution, Macromolecules, 2006, 39, 2364-2372. CrossRef | |
K. Jo, D. M. Dhingra, T. Odijk, J. J. de Pablo, M. D. Graham, R. Runnheim, D. Forrest, and D. C. Schwartz, A single-molecule barcoding system using nanoslits for DNA analysis, Proc. Nat. Acad. Sci. U. S. A., 2007, 104, 2673-2678. CrossRef | |
H. P. Huinink, J. C. M. Brokken-Zijp, M. A. van Dijk, G. J. A. Sevink, Asymmetric block copolymers confined in a thin film, J. Chem. Phys., 2000, 112, 2452-2462. CrossRef | |
A. Alexander-Katz, A. G. Moreira and G. H. Fredrickson, Field-theoretic simulations of confined polymer solutions, J. Chem. Phys., 2003, 118, 9030-9036. CrossRef | |
A. Alexander-Katz, A. G. Moreira, S. W. Scotts, and G. H. Fredrickson, Field-theoretic simulations of polymer solutions: Finite-size and discretization effects, J. Chem. Phys., 2005 122, 014904 (1-8). CrossRef | |
K. Shin, H. Xiang, S. I. Moon, T. Kim, T. J. McCarthy, and T. P. Russell, Curving and frustrating flatland, Science, 2004, 306, 76. CrossRef | |
H. Xiang, K. Shin, T. Kim, S. I. Moon, T. J. McCarthy, and T. P. Russell, Block copolymers under cylindrical confinement, Macromolecules, 2004, 37, 5660-5664. CrossRef | |
D. Cao and J. Wu, Surface-induced phase transitions in ultrathin films of block copolymers, J. Chem. Phys., 2005, 122, 194703 (1-8). CrossRef | |
M. Wang, W. Hu, Y. Ma, and Y.-Q. Ma, Confined crystallization of cylindrical diblock copolymers studied by dynamic Monte Carlo simulations, J. Chem. Phys., 2006, 124, 244901 (1-6). CrossRef | |
P. Maniadis, I. N. Tsimpanogiannis, E. M. Kober and T. Lookman, Phase segregation of diblock copolymers in nanopore geometries, Europhys. Lett., 2008, 81, 56001 (1-6). CrossRef | |
Bin Yu, Pingchuan Sun, Tiehong Chen, Qinghua Jin, Datong Ding, and Baohui Li, Confinement-induced novel morphologies of block copolymers, Phys. Rev. Lett., 2006, 96, 138306 (1-4). CrossRef | |
J. J. Kasianowicz, E. Brandin, D. Branton, and D. W. Deamer, Characterization of individual polynucleotide molecules using a membrane channel, Proc. Nat. Acad. Sci. U. S. A., 1996, 90, 13770-13773. | |
A. Meller, L. Nivon, E. Brandin, J. Golovchenko, and D. Branton, Rapid nanopore discrimination between single polynucleotide molecules, Proc. Nat. Acad. Sci. U. S. A., 2000, 97, 1079-1084. CrossRef | |
A. Meller, L. Nivon, E. Brandin, Voltage-driven DNA translocations through a nanopore, Phys. Rev. Lett., 2001, 86, 3435-3438. CrossRef | |
S. E. Henrickson, M. Misakian, B. Robertson, and J. J. Kasianowicz, Driven DNA transport into an asymmetric nanometer-scale pore, Phys. Rev. Lett., 2000, 85, 3057-3060. CrossRef | |
H. Vocks, D. Panja, G. T. Barkema, and R. C. Ball, Pore-blockade times for field-driven polymer translocation, J. Phys.: Condens. Matt., 2008, 20, 095224 (1-8). CrossRef | |
E. Slonkina and B. Kolomeisky, Polymer translocation through a long nanopore, J. Chem. Phys., 2003, 118, 7112-7118. CrossRef | |
Giovanni Maglia, Marcela Rincon Restrepo, Ellina Mikhailova, and Hagan Bayley, Enhanced translocation of single DNA molecules through α-hemolysin nanopores by manipulation of internal charge, Proc. Nat. Acad. Sci. U. S. A., 2008, 105, 19720-19725. CrossRef | |
T. Hu and B. I. Shklovskii, Theory of DNA translocation through narrow ion channels and nanopores with charged walls, Phys. Rev. E, 2008, 78, 032901 (1-3). CrossRef | |
J. Li, M. Gershow, D Stein, E. brandin and J. A. Golovchenko, DNA molecules and configurations in a solid-state nanopore microscope, Nat. Mater., 2003, 2, 611-615. CrossRef | |
P. Chen, J. J. Gu, E. Brandin, Y. R. Kim, Q. Wang, and D. Branton, Probing single DNA molecule transport using fabricated nanopores. Nano Lett., 2004, 4, 2293-2298. CrossRef | |
Y. Lansac, P. K. Maiti, and M. A. Glaser, Coarse-grained simulation of polymer translocation through an artificial nanopore, Polymer, 2004, 45, 3099-3110. CrossRef | |
R. J. Murphy and M. Muthukumar, Threading synthetic polyelectrolytes through protein pores, J. Chem. Phys., 2007, 126, 051101 (1-4). CrossRef | |
D. K. Lubensky and D. R. Nelson, Driven polymer translocation through a narrow pore, Biophys. J., 1999, 77, 1824-1838. CrossRef | |
M. Muthukumar, Polymer translocation through a hole, J. Chem. Phys., 1999, 111, 10371. CrossRef | |
C. Y. Kong and M. Muthukumar, Modeling of polynucleotide translocation through protein pores and nanotubes, Electrophoresis, 2002, 23, 2697-2703. CrossRef | |
M. Muthukumar, Polymer escape through a nanopore, J. Chem. Phys., 2003, 118, 5174-5184. CrossRef | |
Y. Kantor and M. Kardar, Anomalous dynamics of forced translocation, Phys. Rev. E, 2004, 69, 021806 (1-12). CrossRef | |
A. J. Storm, C. Storm, J. Chen, H. Zandbergen, J.-F. Joanny, and C. Dekker, Fast DNA translocation through a solid-state nanopore, Nano Lett., 2005, 5, 1193-1197. CrossRef | |
P. Tian and G. D. Smith, Translocation of a polymer chain across a nanopore: A Brownian dynamics simulation study, J. Chem. Phys., 2003, 119, 11475. CrossRef | |
A. Meller and D. Branton, Single molecule measurements of DNA transport through a nanopore, Electrophoresis, 2002, 23, 2583. CrossRef | |
J. J. Kasianowicz, S. E. Henrickson, H. H. Weetall, and B. Robertson, Simultaneous Multianalyte Detection with a Nanometer-Scale Pore, Anal. Chem., 2001, 73, 2268. CrossRef | |
O. V. Krasilnikov, C. G. Rodrigues, and S. M. Bezrukov, Single Polymer Molecules in a Protein Nanopore in the Limit of a Strong Polymer-Pore Attraction, Phys. Rev. Lett., 2006, 97, 018301. CrossRef | |
S. M. Iqbal, D. Akin, and R. Bashir, Solid-state nanopore channels with DNA selectivity, Nat. Nanotech., 2007, 2, 243-248. CrossRef | |
H. Yan and B. Xu, Towards rapid DNA sequencing: detecting single-stranded DNA with a solid-state nanopore, Small, 2006, 2, 310-312. CrossRef | |
J. Lagerqvist, M. Zwolak, and M. Di Ventra, Fast DNA sequencing via transverse electronic transport, Nano Lett., 2006, 6, 779-782. CrossRef | |
Q. Zhao, G. Sigalov, V. Dimitrov, B. Dorvel, U. Mirsaidov, S. Sligar, A. Aksimentiev, and G. Timp, Detecting SNPs using a synthetic nanopore, Nano Lett., 2007, 7, 1680-1685. CrossRef | |
X. Liang and S. Y. Chou, Nanogap detector inside nanofluidic channel for fast real-time label-free DNA analysis, Nano Lett., 2008, 8, 1472-1476. CrossRef | |
J. Clarke, H. C. Wu, L. Jayasinghe, A. Patel, S. Reid, and H. Bayley, Continuous base identification for single-molecule nanopore DNA sequencing, Nat. Nanotech., 2009, 4, 265-270. CrossRef | |
O. B. Bakajin, T. A. J. Duke, C. F. Chou, S. S. Chan, R. H. Austin, and E. C. Cox, Electrohydrodynamic stretching of DNA in confined environments, Phys. Rev. Lett., 1998, 80, 2737-2740. CrossRef | |
N. Laachi, J. Cho, and K. D. Dorfman, DNA unhooking from a single post as a deterministic process: Insights from translocation modeling, Phys. Rev. E, 2009, 79, 031928 (1-9). CrossRef | |
S. W. P. Turner, M. Cabodi, and H. G. Craighead, Confinement-induced entropic recoil of single DNA molecules in a nanofluidic structure, Phys. Rev. Lett., 2002, 88, 128103 (1-4). CrossRef | |
C. Forrey and M. Muthukumar, Langevin dynamics simulations of ds-DNA translocation through synthetic nanopores, J. Chem. Phys., 2007, 127, 015102 (1-10). CrossRef | |
A. Mohan, A. B. Kolomeisky, and M. Pasquali, Effect of charge distribution on the translocation of an inhomogeneously charged polymer through a nanopore, J. Chem. Phys., 2008, 128, 125104 (1-7). CrossRef | |
J. Han and H. G. Craighead, Separation of long DNA molecules in a microfabricated entropic trap array, Science, 2000, 288, 1026-1029. CrossRef | |
J. Han and H. G. Craighead, Characterization and optimization of an entropic trap for DNA separation, Anal. Chem., 2002, 74, 394-401. CrossRef | |
Y. Zeng and D. J. Harrison, Confinement effects on electromigration of long DNA molecules in an ordered cavity array, Electrophoresis, 2006, 27, 3747-3752. CrossRef | |
Z. R. Li, G. R. Liu, Y. Z. Chen, J. S. Wang, H. Bow, Y. Cheng, and J. Han, Continuum transport model of Ogston sieving in patterned nanofilter arrays for separation of rod-like biomolecules, Electrophoresis, 2008, 29, 329-339. CrossRef | |
Z. R. Li, G. R. Liu, J. Han, Y. Z. Chen, J. S. Wang, and N. G. Hadjiconstantinou, Transport of biomolecules in asymmetric nanofilter arrays, Anal. Bioanal. Chem., 2009, 394, 427-435. CrossRef | |
D. Fologea, J. Uplinger, B. Thomas, D. S. McNabb, and J. Li, Slowing DNA translocation in a solid-state nanopore, Nano Lett., 2005, 5, 1734-1737. CrossRef | |
R. Riehn, M. Lu, Y.-M. Wang, S. F. Lim, E. C. Cox, and R. H. Austin, Restriction mapping in nanofluidic devices, Proc. Nat. Acad. Sci. U. S. A., 2005, 102, 10012-10016. CrossRef | |
E. H. Trepagnier, A. Radenovic, D. Sivak, P. Geissler, and J. Liphardt, Controlling DNA capture and propagation through artificial nanopores, Nano Lett., 2007, 7, 2824-2830. CrossRef | |
C. Y. Kong and M. Muthukumar, Simulations of stochastic sensing of proteins, J. Am. Chem. Soc., 2005, 127, 12852-12861. | |
S. Kotsev and A. B. Kolomeisky, Effect of orientation in translocation of polymers through nanopores, J. Chem. Phys., 2006, 125, 084906 (1-7). CrossRef | |
R. Randel, H. C. Loebl, and C. C. Matthai, Molecular Dynamics Simulations of polymer translocations, Macromol. Theor. Simul., 2004, 13, 387-391. CrossRef | |
Q. Zhao, J. Comer, V. Dimitrov, S. Yemenicioglu, A. Aksimentiev, and G. Timp, Stretching and unzipping nucleic acid hairpins using a synthetic nanopore, Nucl. Acid. Res., 2008, 1532-1541. | |
U. Bockelmann and V. Viasnoff, Theoretical study of sequence-dependent nanopore unzipping of DNA, Biophys. J., 2008, 94, 2716-2724. CrossRef | |
V. Viasnoff, N. Chiaruttini, and U. Bockelmann, Probing DNA base pairing energy profiles using a nanopore, Euro. Biophys. J., 2009, 38, 263-269. CrossRef | |
M. Wanunu, B. Chakrabarti, J. Mathe, D. R. Nelson, and A. Meller, Orientation-dependent interactions of DNA with an alpha-hemolysin channel, Phys. Rev. E, 2008, 77, 031904. CrossRef | |
J. Mathe, A, Aksimentiev, D. R. Nelson, K. Schulten, and A. Meller, Orientation discrimination of single-stranded DNA inside the α-hemolysin membrane channel, Proc. Nat. Acad. Sci. U. S. A., 2005, 102, 12377-12382. CrossRef | |
J. T. Mannion, C. H. Reccius, J. D. Cross, and H. G. Craighead, Conformational analysis of single DNA molecules undergoing entropically induced motion in nanochannels, Biophys. J., 2006, 90, 4538-4545. CrossRef | |
S. Benner, R. J. Chen, N. A. Wilson, R. Abu-Shumays, N. Hurt, K. R. Lieberman, D. W. Deamer, W. B. Dunbar, and M. Akeson, Sequence-specific detection of individual DNA polymerase complexes in real time using a nanopore, Nat. Nanotech., 2007, 2, 718-724. CrossRef | |
C. H. Reccius, S. M. Stavis, J. T. Mannion, L. P. Walker, and H. G. Craighead, Conformation, length, and speed measurements of electrodynamically stretched DNA in nanochannels, Biophys. J., 2008, 95, 273-286. CrossRef | |
A. F. Sauer-Budge, J. A. Nyamwanda, D. K. Lubensky, and D. Branton, Unzipping kinetics of double-stranded DNA in a nanopore, Phys. Rev. Lett., 2003, 90, 238101 (1-4). CrossRef | |
J. Mathe, H. Visram, V. Viasnoff, Y. Rabin, and Amit Meller, Nanopore unzipping of individual DNA hairpin molecules, Biophys. J., 2004, 87, 3205-3212. CrossRef | |
J. Mathe, A. Arinstein, Y. Rabin, and Amit Meller, Equilibrium and irreversible unzipping of DNA in a nanopore, Europhys. Lett., 2006, 73, 128-134. CrossRef | |
O. K. Dudko, J. Mathe, A. Szabo, A. Meller, and G. Hummer, Extracting kinetics from single-molecule force spectroscopy: Nanopore unzipping of DNA hairpins, Biophys. J., 2007, 92, 4188-4195. CrossRef | |
O. Dudko, G. Hummer, and A. Szabo, Theory, analysis and interpretation of single-molecule force spectroscopy experiments, 2008 Proc. Natl. Acad. Sci. U. S. A., 105, 15755-760. CrossRef | |
Y. Kafri, D. K. Lubensky, and D. R. Nelson, Dynamics of molecular motors and polymer translocation with sequence heterogeneity, Biophys. J., 2004, 86, 3373-3391. CrossRef | |
U. F. Keyser, B. N. Koeleman, S. van Dorp, D. Krapf, R. M. M. Smeets, S. G. Lemay, N. H. Dekker and C, Dekker, Direct force measurements on DNA in a solid-state nanopore, Nat. Phys., 2006, 2, 473-477. CrossRef | |
C. Dekker, Solid-state nanopores, Nat. Nanotech., 2007, 2, 209-215. CrossRef | |
K. Luo, I. Huopaniemi, T. Ala-Nissila, and S.-C. Ying, Polymer translocation through a nanopore under an applied external field, J. Chem. Phys., 2006, 124, 114704 (1-7). CrossRef | |
I. Huopaniemi, K. Luo, T. Ala-Nissila, and S.-C. Ying, Langevin dynamics simulations of polymer translocation through nanopores, J. Chem. Phys., 2006, 125, 124901 (1-8). CrossRef | |
J. L. A. Dubbeldam, A. Milchev, V. G. Rostiashvili, and T. A. Vilgis, Driven polymer translocation through a nanopore: A manifestation of anomalous diffusion, Europhys. Lett., 2007, 79, 18002 (1-6). CrossRef | |
D. Panja and G. T. Barkema, Passage times for polymer translocation pulled through a narrow pore, Biophys. J., 2008, 94, 1630-1637. CrossRef | |
H. C. Loebl, R. Randel, S. P. Goodwin, and C. C. Matthai, Simulation studies of polymer translocation through a channel, Phys. Rev. E, 2003, 67, 041913 (1-5). CrossRef | |
K. Luo, T. Ala-Nissila, S.-C. Ying, and A. Bhattacharya, Heteropolymer translocation through nanopores, J. Chem. Phys., 2007, 126, 145101 (1-7). CrossRef | |
K. Luo, T. Ala-Nissila, S.-C. Ying, and A. Bhattacharya, Influence of polymer-pore interactions on translocation, Phys. Rev. Lett., 2007, 99, 148102 (1-4). CrossRef | |
K. Luo, T. Ala-Nissila, S.-C. Ying, and A. Bhattacharya, Dynamics of DNA translocation through an attractive nanopore, Phys. Rev. E, 2008, 78, 061911 (1-6). CrossRef | |
W. Sung and P. J. Park, Polymer Translocation through a Pore in a Membrane, Phys. Rev. Lett., 1996, 77, 783-786. CrossRef | |
M. Muthukumar, Polymer translocation through a hole, J. Chem. Phys., 1999, 111, 10371-10374. CrossRef | |
Y.-C. Chen, C. Wang, and M.-B. Luo, Simulation study on the translocation of polymer chains through nanopores, J. Chem. Phys., 2007, 127, 044904 (1-6). CrossRef | |
Y. Xie, H. Yang, H. Yu, Q. Shi, X. Wang, and J. Chen, Excluded volume effect on confined polymer translocation through a short nanochannel, J. Chem. Phys., 2006, 124, 174906 (1-4). CrossRef | |
M.-B. Luo, Translocation of polymer chains through interacting nanopores, Polymer, 2007, 48, 7679-7686. CrossRef | |
P. J. Park and W. Sung, Polymer translocation induced by adsorption, J. Chem. Phys., 1998, 108, 3013-3018. CrossRef | |
A. Milchev, K. Binder, and A. Bhattacharya, Polymer translocation through a nanopore induced by adsorption: Monte Carlo simulation of a coarse-grained model, J. Chem. Phys., 2004, 121, 6042-6051. CrossRef | |
J. K. Wolterink. G. T. Barkema, and D. Panja, Passage Times for Unbiased Polymer Translocation through a Narrow Pore, Phys. Rev. Lett., 2006, 96, 208301. CrossRef | |
D. Panja, G. T. Barkema, and R. C. Ball, Anomalous dynamics of unbiased polymer translocation through a narrow pore, J. Phys.: Condens. Matt., 2007, 19, 432202 (1-8). CrossRef | |
D. Panja, G. T. Barkema, and R. C. Ball, Polymer translocation out of planar confinements, J. Phys.: Condens. Matt., 2008, 20, 075101 (1-9). CrossRef | |
J. L. A. Dubbeldam, A. Milchev, V. G. Rostiashvili, and T. A. Vilgis, Polymer translocation through a nanopore: A showcase of anomalous diffusion, Phys. Rev. E, 2007, 76, 010801 (R) (1-4). CrossRef | |
K. Luo, T. Ala-Nissila, and S.-C. Ying, Polymer translocation through a nanopore: A two-dimensional Monte Carlo study, J. Chem. Phys., 2006, 124, 034714 (1-5). CrossRef | |
S. Guillouzic and G. W. Slater, Polymer translocation in the presence of excluded volume and explicit hydrodynamic interactions Phys. Lett. A, 2006, 359, 261-264. CrossRef | |
R. Gasparac, D. T. Mitchell and C. R. Martin, Electrokinetic DNA transport in a nanopore membrane, Electrchim. Acta, 2004, 49, 847-850. | |
S. Ghosal, Electrophoresis of a polyelectrolyte through a nanopore, Phys. Rev. E, 2006, 74, 041901 (1-5). CrossRef | |
S. Ghosal, Effect of Salt Concentration on the Electrophoretic Speed of a Polyelectrolyte through a Nanopore, Phys. Rev. Lett., 2007, 98, 238104 (1-4). CrossRef | |
S. Ghosal, Electrokinetic-flow-induced viscous drag on a tethered DNA inside a nanopore, Phys. Rev. E, 2007, 061916 (1-3). | |
C. T. A. Wong and M. Muthukuamr, Polymer capture by electro-osmotic flow of oppositely charged nanopores, J. Chem. Phys., 2007, 126, 164903 (1-6). CrossRef | |
S. Pennathur, F. Baldessari, J. G. Santiago, M. G. Kattah, J. B. Steinman, and P. J. Utz, Free-Solution Oligonucleotide Separation in Nanoscale Channels, Anal. Chem., 2007, 79, 8316-8322. CrossRef | |
X. Liang, K. J. Morton, R. H. Austin, and S. Y. Chou, Single Sub-20 nm Wide, Centimeter-Long Nanofluidic Channel Fabricated by Novel Nanoimprint Mold Fabrication and Direct Imprinting, Nano Lett., 2007, 7, 3774-3780. CrossRef | |
B. Luan and A. Aleksei, Electro-osmotic screening of the DNA charge in a nanopore, Phys. Rev. E, 2008, 78, 021912. CrossRef | |
S. van Dorp, U. F. Keyser, N. H. Dekker, C. Dekker, S. G. Lemay, Origin of the electrophoretic force on DNA in solid-state nanopores, Nat. Phys., 2009, 5, 347-351. CrossRef | |
M. A. Webster and J. M. Yeomans, Modeling a tethered polymer in Poiseuille flow, J. Chem. Phys., 2005, 122, 164903 (1-6). CrossRef | |
D. Stein, F. H. J. van der Heyden, W. J. A. Koopmans, and C. Dekker, Pressure-driven transport of confined DNA polymers in fluidic channels, Proc. Nat. Acad. Sci. U. S. A., 2006, 103, 15853-15858. CrossRef | |
J. Zhang, J. S. Hansen, B. D. Todd, and P. J. Daivis, Structural and dynamical properties for confined polymers undergoing planar Poiseuille flow, J. Chem. Phys., 2007, 126, 144907 (1-14). CrossRef | |
R. B. Schoch, L. F. Cheow, and J. Han, Electrical detection of fast reaction kinetics in nanochannels with an induced flow, Nano Lett., 2007, 7, 3895-3900. CrossRef | |
P. Abgrall and N. T. Nguyen, Nanofluidic Devices and Their Applications, Anal. Chem., 2008, 80, 2326-2341. CrossRef | |
Y.-D. He, H.-J. Qian, Z.-Y. Lu, and Z.-S. Li, Polymer translocation through a nanopore in mesoscopic simulations, Polymer, 2007, 48, 3601-3606. CrossRef | |
G. M. Wang and W. C. Sandberg, Non-equilibrium all-atom molecular dynamics simulations of free and tethered DNA molecules in nanochannel shear flows, Nanotech., 2007, 18, 135702 (1-9). CrossRef | |
W. C. Sandberg and G. M. Wang, Atomic hydrodynamics of DNA: Coil-uncoil-coil transitions in a wall-bounded shear flow, Phys. Rev. E, 2008, 78, 061910 (1-12). CrossRef | |
S. C. Kohale and R. Khare, Cross stream chain migration in nanofluidic channels: Effects of chain length, channel height, and chain concentration, J. Chem. Phys., 2009, 130, 104904 (1-8). CrossRef | |
K.-G. Wang, S. Yue, L. Wang, A. Jin, C. Gu, P.-Ye Wang, Y. Feng, Y. Wang, and H. Niu, Manipulating DNA molecules in nanofluidic channels, Microfluid. Nanofluid., 2006, 2, 85-88. CrossRef | |
K. Wang, S. Yue, L. Wang, A. Jin, C. Gu, P. Wang, H. Wang, X. Xu, Y. Wang, and H. Niu, Nanofluidic channels fabrication and manipulation of DNA molecules, IEE Proc.-Nanobiotechnol., 2006, 153, 11-15. CrossRef | |
H. T. Hoang, I. M. Segers-Nolten, J. W. Berenschot, M. J. de Boer, N. R. Tas, J. Haneveld, and M. C. Elwenspoek, Fabrication and interfacing of nanochannel devices for single-molecule studies, J. Micromech. Microeng., 2009, 19, 065017 (1-10). CrossRef |
Transport of Flexible Molecules in Narrow Confinements
Siddhartha DasRelated information
1 Department of Mechanical Engineering, Indian Institute of Technology, Kharagpur-721302, India
, Suman ChakrabortyRelated information1 Department of Mechanical Engineering, Indian Institute of Technology, Kharagpur-721302, India