Microfluidic pumping by micromolar salt concentrations.
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Thomas Palberg | Christian Holm | Ran Niu | Georg Rempfer | Joost de Graaf | Aidan T Brown | T. Palberg | G. Rempfer | J. de Graaf | R. Niu | D. Botin | Aidan T. Brown | Patrick Kreissl | Patrick Kreissl | Denis Botin | Christian Holm
[1] H. Löwen,et al. Colloidal crystallization in the quasi-two-dimensional induced by electrolyte gradients. , 2012, The Journal of chemical physics.
[2] W. Marsden. I and J , 2012 .
[3] F. Millero. Thermodynamics of the carbon dioxide system in the oceans , 1995 .
[4] Ayusman Sen,et al. Light‐Driven Titanium‐Dioxide‐Based Reversible Microfireworks and Micromotor/Micropump Systems , 2010 .
[5] Christian Holm,et al. Ionic screening and dissociation are crucial for understanding chemical self-propulsion in polar solvents. , 2017, Soft matter.
[6] Peter Enoksson,et al. A Valve-Less Diffuser Micropump for Microfluidic Analytical Systems , 2001 .
[7] Juan G. Santiago,et al. A review of micropumps , 2004 .
[8] Yang Wang,et al. Catalytically induced electrokinetics for motors and micropumps. , 2006, Journal of the American Chemical Society.
[9] Christian Godenschwager,et al. Moving charged particles in lattice Boltzmann-based electrokinetics. , 2016, The Journal of chemical physics.
[10] S. Griffis. EDITOR , 1997, Journal of Navigation.
[11] Thomas E Mallouk,et al. Schooling behavior of light-powered autonomous micromotors in water. , 2009, Angewandte Chemie.
[12] Ericka Stricklin-Parker,et al. Ann , 2005 .
[13] Pratt,et al. Evidence for the Validity of Electrokinetic Theory in the Thin Double Layer Region , 1996, Journal of colloid and interface science.
[14] Tad Hogg,et al. Chemical Power for Microscopic Robots in Capillaries , 2009, Nanomedicine : nanotechnology, biology, and medicine.
[15] Rajarshi Guha,et al. Origins of concentration gradients for diffusiophoresis. , 2016, Soft matter.
[16] Wilson Poon,et al. Ionic effects in self-propelled Pt-coated Janus swimmers. , 2013, Soft matter.
[17] D. Grahame. The electrical double layer and the theory of electrocapillarity. , 1947, Chemical reviews.
[18] H. Löwen,et al. Controlled assembly of single colloidal crystals using electro-osmotic micro-pumps. , 2016, Physical chemistry chemical physics : PCCP.
[19] J. Brady,et al. Osmotic propulsion: the osmotic motor. , 2008, Physical review letters.
[20] Henry Hess,et al. A Biomimetic, Self‐Pumping Membrane , 2010, Advanced materials.
[21] P.V.C. Hough,et al. Machine Analysis of Bubble Chamber Pictures , 1959 .
[22] Darrell Velegol,et al. Self-generated diffusioosmotic flows from calcium carbonate micropumps. , 2012, Langmuir : the ACS journal of surfaces and colloids.
[23] O. Schmidt,et al. Tunable catalytic tubular micro-pumps operating at low concentrations of hydrogen peroxide. , 2011, Physical chemistry chemical physics : PCCP.
[24] A Bachtold,et al. Imaging the proton concentration and mapping the spatial distribution of the electric field of catalytic micropumps. , 2013, Physical review letters.
[25] H. S. Harned,et al. The Differential Diffusion Coefficient of Potassium Chloride in Aqueous Solutions , 1949 .
[26] S. T. Phillips,et al. Self-powered microscale pumps based on analyte-initiated depolymerization reactions. , 2012, Angewandte Chemie.
[27] Henry Shum,et al. Convective flow reversal in self-powered enzyme micropumps , 2015, Proceedings of the National Academy of Sciences.
[28] C. Holm,et al. Reducing spurious flow in simulations of electrokinetic phenomena. , 2016, The Journal of chemical physics.
[29] R. J. Hunter,et al. Measurement and Interpretation of Electrokinetic Phenomena (IUPAC Technical Report) , 2005 .
[30] G. G. Stokes. "J." , 1890, The New Yale Book of Quotations.
[31] Yang Wang,et al. Catalytic micropumps: microscopic convective fluid flow and pattern formation. , 2005, Journal of the American Chemical Society.
[32] John L. Anderson,et al. Colloid Transport by Interfacial Forces , 1989 .
[33] R. Superfine,et al. Biomimetic cilia arrays generate simultaneous pumping and mixing regimes , 2010, Proceedings of the National Academy of Sciences.
[34] U. Keyser,et al. Selective Trapping of DNA Using Glass Microcapillaries. , 2016, Langmuir.
[35] E. Uzgiris. Laser doppler spectrometer for study of electrokinetic phenomena. , 1974, The Review of scientific instruments.
[36] Asim Nisar,et al. MEMS-based micropumps in drug delivery and biomedical applications , 2008 .
[37] A. Bachtold,et al. Silicon-Based Chemical Motors: An Efficient Pump for Triggering and Guiding Fluid Motion Using Visible Light , 2015, ACS nano.
[38] W. M. Haynes. CRC Handbook of Chemistry and Physics , 1990 .
[39] H. Stone,et al. Size-dependent control of colloid transport via solute gradients in dead-end channels , 2015, Proceedings of the National Academy of Sciences.
[40] O. Velev,et al. Remotely powered self-propelling particles and micropumps based on miniature diodes. , 2007, Nature materials.
[41] E. Uzgiris. Laser Doppler methods in electrophoresis , 1981 .
[42] Hua Zhang,et al. Chemistry pumps: a review of chemically powered micropumps. , 2016, Lab on a chip.
[43] Ayusman Sen,et al. Triggered "on/off" micropumps and colloidal photodiode. , 2012, Journal of the American Chemical Society.
[44] T. Palberg,et al. Electro-kinetics of charged-sphere suspensions explored by integral low-angle super-heterodyne laser Doppler velocimetry , 2012, Journal of physics. Condensed matter : an Institute of Physics journal.
[45] Yang Wang,et al. Hydrazine fuels for bimetallic catalytic microfluidic pumping. , 2007, Journal of the American Chemical Society.
[46] J. de Graaf,et al. The efficiency of self-phoretic propulsion mechanisms with surface reaction heterogeneity. , 2016, The Journal of chemical physics.
[47] R. C. Weast. CRC Handbook of Chemistry and Physics , 1973 .