Ionic screening and dissociation are crucial for understanding chemical self-propulsion in polar solvents.
暂无分享,去创建一个
Christian Holm | Joost de Graaf | C. Holm | W. Poon | J. de Graaf | Aidan T. Brown | Wilson C. K. Poon | Aidan T. Brown | Christian Holm
[1] Lee R. White,et al. Electrophoretic mobility of a spherical colloidal particle , 1978 .
[2] John G. Gibbs,et al. Self-Propelling Nanomotors in the Presence of Strong Brownian Forces , 2014, Nano letters.
[3] Hartmut Löwen,et al. Non-Gaussian statistics for the motion of self-propelled Janus particles: experiment versus theory. , 2013, Physical review. E, Statistical, nonlinear, and soft matter physics.
[4] Yanyan Cao,et al. Catalytic nanomotors: autonomous movement of striped nanorods. , 2004, Journal of the American Chemical Society.
[5] M. Tasinkevych,et al. Self-propulsion of a catalytically active particle near a planar wall: from reflection to sliding and hovering. , 2014, Soft matter.
[6] David Reguera,et al. Key parameters controlling the performance of catalytic motors. , 2016, The Journal of chemical physics.
[7] C. Holm,et al. Reducing spurious flow in simulations of electrokinetic phenomena. , 2016, The Journal of chemical physics.
[8] Sangtae Kim,et al. Microhydrodynamics: Principles and Selected Applications , 1991 .
[9] Wei Wang,et al. Steering acoustically propelled nanowire motors toward cells in a biologically compatible environment using magnetic fields. , 2013, Langmuir : the ACS journal of surfaces and colloids.
[10] Mingjun Xuan,et al. Self-propelled Janus mesoporous silica nanomotors with sub-100 nm diameters for drug encapsulation and delivery. , 2014, Chemphyschem : a European journal of chemical physics and physical chemistry.
[11] Xingbo Yang,et al. Hydrodynamics of Turning Flocks. , 2014, Physical review letters.
[12] Oliver Pohl,et al. Dynamic clustering and chemotactic collapse of self-phoretic active particles. , 2014, Physical review letters.
[13] Y. Pocker,et al. Stopped-flow studies of carbon dioxide hydration and bicarbonate dehydration in water and water-d2. Acid-base and metal ion catalysis , 1977 .
[14] Samudra Sengupta,et al. Substrate catalysis enhances single-enzyme diffusion. , 2010, Journal of the American Chemical Society.
[15] Yang Wang,et al. Catalytically induced electrokinetics for motors and micropumps. , 2006, Journal of the American Chemical Society.
[16] J. Marko,et al. Self-propulsion and interactions of catalytic particles in a chemically active medium. , 2016, Physical review. E.
[17] Vicsek,et al. Novel type of phase transition in a system of self-driven particles. , 1995, Physical review letters.
[18] David J. Pine,et al. Living Crystals of Light-Activated Colloidal Surfers , 2013, Science.
[19] R. Golestanian,et al. Designing phoretic micro- and nano-swimmers , 2007, cond-mat/0701168.
[20] J. de Graaf,et al. The efficiency of self-phoretic propulsion mechanisms with surface reaction heterogeneity. , 2016, The Journal of chemical physics.
[21] R. Golestanian,et al. Hydrodynamic suppression of phase separation in active suspensions. , 2012, Physical review. E, Statistical, nonlinear, and soft matter physics.
[22] Ramin Golestanian,et al. Size dependence of the propulsion velocity for catalytic Janus-sphere swimmers. , 2012, Physical review. E, Statistical, nonlinear, and soft matter physics.
[23] Gary J. Dunderdale,et al. Electrokinetic effects in catalytic platinum-insulator Janus swimmers , 2013, 1312.6250.
[24] Udo Seifert,et al. Nonlinear, electrocatalytic swimming in the presence of salt. , 2012, The Journal of chemical physics.
[25] Stephen J. Ebbens,et al. In pursuit of propulsion at the nanoscale , 2010 .
[26] D. Kern. The Polarography and Standard Potential of the Oxygen-Hydrogen Peroxide Couple , 1954 .
[27] M. Cates,et al. Clustering and Pattern Formation in Chemorepulsive Active Colloids. , 2015, Physical review letters.
[28] Adriano Tiribocchi,et al. Continuum theory of phase separation kinetics for active Brownian particles. , 2013, Physical review letters.
[29] O. Schmidt,et al. Catalytic microtubular jet engines self-propelled by accumulated gas bubbles. , 2009, Small.
[30] J. Marchand,et al. Calculation of ionic diffusion coefficients on the basis of migration test results , 2003 .
[31] E. Caldin. Fast reactions in solution , 1964 .
[32] R. J. Hunter. Foundations of Colloid Science , 1987 .
[33] M. Ibele,et al. Motion analysis of light-powered autonomous silver chloride nanomotors , 2012, The European Physical Journal E.
[34] J. Posner,et al. Locomotion of electrocatalytic nanomotors due to reaction induced charge autoelectrophoresis. , 2010, Physical review. E, Statistical, nonlinear, and soft matter physics.
[35] Thomas Speck,et al. Dynamical clustering and phase separation in suspensions of self-propelled colloidal particles. , 2013, Physical review letters.
[36] Tristan Tabouillot,et al. Enzyme molecules as nanomotors. , 2013, Journal of the American Chemical Society.
[37] Jonathan D Posner,et al. Rapid fabrication of bimetallic spherical motors. , 2010, Langmuir : the ACS journal of surfaces and colloids.
[38] Allen Pei,et al. Catalytic iridium-based Janus micromotors powered by ultralow levels of chemical fuels. , 2014, Journal of the American Chemical Society.
[39] R. C. Weast. CRC Handbook of Chemistry and Physics , 1973 .
[40] Ramin Golestanian,et al. Propulsion of a molecular machine by asymmetric distribution of reaction products. , 2005, Physical review letters.
[41] John L. Anderson,et al. Colloid Transport by Interfacial Forces , 1989 .
[42] Aidan T Brown,et al. Swimming in a crystal. , 2014, Soft matter.
[43] Noam Eliaz. Physical Electrochemistry: Fundamentals, Techniques, and Applications , 2019 .
[44] Udo Seifert,et al. Dynamics and efficiency of a self-propelled, diffusiophoretic swimmer. , 2011, The Journal of chemical physics.
[45] Darrell Velegol,et al. Boundaries can steer active Janus spheres , 2015, Nature Communications.
[46] Ramin Golestanian,et al. Self-assembly of catalytically active colloidal molecules: tailoring activity through surface chemistry. , 2013, Physical review letters.
[47] A Bachtold,et al. Imaging the proton concentration and mapping the spatial distribution of the electric field of catalytic micropumps. , 2013, Physical review letters.
[48] M. Teubner. The motion of charged colloidal particles in electric fields , 1982 .
[49] Thomas E Mallouk,et al. Schooling behavior of light-powered autonomous micromotors in water. , 2009, Angewandte Chemie.
[50] G. Minkoff,et al. The dissociation constants of some alkyl and acyl hydroperoxides , 1953 .
[51] Wilson Poon,et al. Ionic effects in self-propelled Pt-coated Janus swimmers. , 2013, Soft matter.
[52] A. Einstein. Über die von der molekularkinetischen Theorie der Wärme geforderte Bewegung von in ruhenden Flüssigkeiten suspendierten Teilchen [AdP 17, 549 (1905)] , 2005, Annalen der Physik.
[53] Jonathan D. Posner,et al. Role of Solution Conductivity in Reaction Induced Charge Auto-Electrophoresis , 2012, 1309.1474.
[54] B. J. Yoon,et al. High-order field electrophoresis theory for a nonuniformly charged sphere. , 2003, Journal of colloid and interface science.
[55] Hong-Ren Jiang,et al. Active motion of a Janus particle by self-thermophoresis in a defocused laser beam. , 2010, Physical review letters.
[56] G. Rempfer,et al. Diffusiophoretic Self-Propulsion for Partially Catalytic Spherical Colloids , 2014, IEEE Transactions on NanoBioscience.
[57] S. Fukuzumi,et al. Formation of superoxide ion during the decomposition of hydrogen peroxide on supported metals , 1977 .
[58] D. Mckee. Catalytic decomposition of hydrogen peroxide by metals and alloys of the platinum group , 1969 .
[59] Pratt,et al. Evidence for the Validity of Electrokinetic Theory in the Thin Double Layer Region , 1996, Journal of colloid and interface science.
[60] Raymond Kapral,et al. Collective dynamics of self-propelled sphere-dimer motors. , 2012, Physical review. E, Statistical, nonlinear, and soft matter physics.
[61] J. Thijssen,et al. Mathematical Methods for Physics and Engineering: A Comprehensive Guide , 1998 .
[62] Ramin Golestanian,et al. Self-motile colloidal particles: from directed propulsion to random walk. , 2007, Physical review letters.
[63] Samuel,et al. Propulsion of Microorganisms by Surface Distortions. , 1996, Physical review letters.
[64] J. Posner,et al. Electrokinetic locomotion due to reaction-induced charge auto-electrophoresis , 2010, Journal of Fluid Mechanics.
[65] T. Mallouk,et al. Bipolar electrochemical mechanism for the propulsion of catalytic nanomotors in hydrogen peroxide solutions. , 2006, Langmuir : the ACS journal of surfaces and colloids.
[66] Alois Würger,et al. Polarization of active Janus particles. , 2014, Physical review. E, Statistical, nonlinear, and soft matter physics.
[67] Clemens Bechinger,et al. Active Brownian motion tunable by light , 2011, Journal of physics. Condensed matter : an Institute of Physics journal.
[68] C. Ybert,et al. Dynamic clustering in active colloidal suspensions with chemical signaling. , 2012, Physical review letters.
[69] W. Visscher,et al. Electrocatalysis of cathodic oxygen reduction by metal phthalocyanines: Part III. Iron phthalocyanine as electrocatalyst: experimental part , 1984 .
[70] P. Debye,et al. Reaction Rates in Ionic Solutions , 1942 .
[71] D. C. Henry. The cataphoresis of suspended particles. Part I.—The equation of cataphoresis , 1931 .
[72] Holger Stark,et al. Hydrodynamics determines collective motion and phase behavior of active colloids in quasi-two-dimensional confinement. , 2013, Physical review letters.