Influence of Curvature on the Transfer Coefficients for Evaporation and Condensation of Lennard-Jones Fluid from Square-Gradient Theory and Nonequilibrium Molecular Dynamics
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[1] D. Bedeaux,et al. Heat and mass transfer across interfaces in complex nanogeometries. , 2015, Physical review letters.
[2] D. Bedeaux,et al. Tolman length and rigidity constants of the Lennard-Jones fluid. , 2015, The Journal of chemical physics.
[3] S. Kjelstrup,et al. Thermal conductivity of carbon dioxide from non-equilibrium molecular dynamics: a systematic study of several common force fields. , 2014, The Journal of chemical physics.
[4] D. Bedeaux,et al. Extending the nonequilibrium square-gradient model with temperature-dependent influence parameters. , 2014, Physical review. E, Statistical, nonlinear, and soft matter physics.
[5] P. Coveney,et al. Assembling Ellipsoidal Particles at Fluid Interfaces Using Switchable Dipolar Capillary Interactions , 2014, Advanced materials.
[6] P. Keblinski,et al. Thermal transport across a substrate-thin-film interface: effects of film thickness and surface roughness. , 2014, Physical review letters.
[7] D. Bedeaux,et al. Heat and mass transfer through interfaces of nanosized bubbles/droplets: the influence of interface curvature. , 2014, Physical chemistry chemical physics : PCCP.
[8] P. Slavíček,et al. Irregular shapes of water clusters generated in supersonic expansions. , 2014, Physical review letters.
[9] D. Bedeaux,et al. Thermodynamic stability of nanosized multicomponent bubbles/droplets: the square gradient theory and the capillary approach. , 2014, The Journal of chemical physics.
[10] F. Bresme,et al. Note: local thermal conductivities from boundary driven non-equilibrium molecular dynamics simulations. , 2014, The Journal of chemical physics.
[11] Baron Peters,et al. Size-Dependent Surface Free Energy and Tolman-Corrected Droplet Nucleation of TIP4P/2005 Water. , 2013, The journal of physical chemistry letters.
[12] Raymond Angélil,et al. Large scale molecular dynamics simulations of homogeneous nucleation. , 2013, The Journal of chemical physics.
[13] Alan E van Giessen,et al. Density functional theory of a curved liquid–vapour interface: evaluation of the rigidity constants , 2013, Journal of physics. Condensed matter : an Institute of Physics journal.
[14] C. Grigoropoulos,et al. Heat transfer across the interface between nanoscale solids and gas. , 2011, ACS nano.
[15] D. Bedeaux,et al. Transfer coefficients for the liquid–vapor interface of a two-component mixture , 2011 .
[16] K. Glavatskiy,et al. Multicomponent Interfacial Transport: Described by the Square Gradient Model during Evaporation and Condensation , 2011 .
[17] D. Bedeaux,et al. Resistances for heat and mass transfer through a liquid-vapor interface in a binary mixture. , 2010, The Journal of chemical physics.
[18] B. N. Hale,et al. Scaled vapor-to-liquid nucleation in a Lennard-Jones system. , 2010, Physical review letters.
[19] C. Grigoropoulos,et al. Recrystallization of picosecond laser-melted ZnO nanoparticles in a liquid: a molecular dynamics study. , 2010, The Journal of chemical physics.
[20] N. Mingo,et al. Marked effects of alloying on the thermal conductivity of nanoporous materials. , 2010, Physical Review Letters.
[21] Alan E van Giessen,et al. Direct determination of the Tolman length from the bulk pressures of liquid drops via molecular dynamics simulations. , 2009, The Journal of chemical physics.
[22] S. Kjelstrup,et al. Heat transfer in soft nanoscale interfaces: the influence of interface curvature , 2009 .
[23] Daan Frenkel,et al. Homogeneous bubble nucleation driven by local hot spots: a molecular dynamics study. , 2009, The journal of physical chemistry. B.
[24] P. Grosfils,et al. Dependence of the liquid-vapor surface tension on the range of interaction: a test of the law of corresponding states. , 2008, The Journal of chemical physics.
[25] Bo Hung Kim,et al. Molecular dynamics simulations of thermal resistance at the liquid-solid interface. , 2008, The Journal of chemical physics.
[26] F. Durst,et al. Role of molecular phonons and interfacial-temperature discontinuities in water evaporation. , 2008, Physical review. E, Statistical, nonlinear, and soft matter physics.
[27] G. Galliéro,et al. Thermal conductivity of the Lennard-Jones fluid: An empirical correlation , 2008 .
[28] R. Hołyst,et al. Heat transfer at the nanoscale: evaporation of nanodroplets. , 2008, Physical review letters.
[29] D. Reguera,et al. Nucleation rate isotherms of argon from molecular dynamics simulations. , 2007, The Journal of chemical physics.
[30] D. Kashchiev,et al. Argon nucleation in a cryogenic nucleation pulse chamber. , 2007, The Journal of chemical physics.
[31] F. Durst,et al. Experimental and theoretical investigations on interfacial temperature jumps during evaporation , 2007 .
[32] F. Bresme,et al. Nanoparticles at fluid interfaces , 2007, Journal of physics. Condensed matter : an Institute of Physics journal.
[33] D. Bedeaux,et al. Transfer coefficients for evaporation of a system with a Lennard-Jones long-range spline potential. , 2007, Physical review. E, Statistical, nonlinear, and soft matter physics.
[34] R. C. Cohen,et al. Raman thermometry measurements of free evaporation from liquid water droplets. , 2006, Journal of the American Chemical Society.
[35] D. Bedeaux,et al. Interface film resistivities for heat and mass transfers-integral relations verified by non-equilibrium molecular dynamics. , 2006, The journal of physical chemistry. B.
[36] R. Strey,et al. Homogeneous nucleation and droplet growth in supersaturated argon vapor: the cryogenic nucleation pulse chamber. , 2006, The Journal of chemical physics.
[37] Paul V Braun,et al. Thermal conductance of hydrophilic and hydrophobic interfaces. , 2006, Physical review letters.
[38] S. Yoo,et al. The Tolman length: is it positive or negative? , 2005, Journal of the American Chemical Society.
[39] S. Garde,et al. Thermal resistance of nanoscopic liquid-liquid interfaces: dependence on chemistry and molecular architecture. , 2005, Nano letters.
[40] T. Emrick,et al. Nanoparticle assembly at fluid interfaces: structure and dynamics. , 2005, Langmuir : the ACS journal of surfaces and colloids.
[41] F. Durst,et al. Thermocapillary transport of energy during water evaporation. , 2004, Physical review. E, Statistical, nonlinear, and soft matter physics.
[42] Henning Struchtrup,et al. Mean evaporation and condensation coefficients based on energy dependent condensation probability. , 2004, Physical review. E, Statistical, nonlinear, and soft matter physics.
[43] S. Phillpot,et al. THERMAL TRANSPORT IN NANOFLUIDS1 , 2004 .
[44] Dick Bedeaux,et al. The nonequilibrium van der Waals square gradient model. (III). Heat and mass transfer coefficients , 2004 .
[45] Dick Bedeaux,et al. The nonequilibrium van der Waals square gradient model. (II). Local equilibrium of the Gibbs surface , 2003 .
[46] Sarit K. Das,et al. Thermal conductivities of naked and monolayer protected metal nanoparticle based nanofluids: Manifestation of anomalous enhancement and chemical effects , 2003 .
[47] S. Phillpot,et al. Mechanisms of heat flow in suspensions of nano-sized particles (nanofluids) , 2002 .
[48] M. Klein,et al. Aggregation-volume-bias Monte Carlo simulations of vapor-liquid nucleation barriers for Lennard-Jonesium , 2001 .
[49] D. Bedeaux,et al. Nonequilibrium Molecular Dynamics Simulations of Steady-State Heat and Mass Transport in Condensation. II. Transfer Coefficients. , 2001, Journal of colloid and interface science.
[50] D. Bedeaux,et al. Van der Waals theory of curved surfaces , 1993 .
[51] Steve Plimpton,et al. Fast parallel algorithms for short-range molecular dynamics , 1993 .
[52] John A. Zollweg,et al. The Lennard-Jones equation of state revisited , 1993 .
[53] B. Smit,et al. Phase diagrams of Lennard‐Jones fluids , 1992 .