Stress-augmented thermal activation: Tribology feels the force
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[1] J. Zhang,et al. On the effect of confined fluid molecular structure on nonequilibrium phase behaviour and friction. , 2017, Physical chemistry chemical physics : PCCP.
[2] Vikram Jadhao,et al. Probing large viscosities in glass-formers with nonequilibrium simulations , 2017, Proceedings of the National Academy of Sciences.
[3] R. I. Taylor,et al. Study of Permanent Shear Thinning of VM Polymer Solutions , 2017, Tribology Letters.
[4] R. Bosman,et al. A Deterministic Stress-Activated Model for Tribo-Film Growth and Wear Simulation , 2017, Tribology Letters.
[5] H. Spikes. Comment on: Rheology of an Ionic Liquid with Variable Carreau Exponent: A Full Picture by Molecular Simulation with Experimental Contribution, by Nicolas Voeltzel, Philippe Vergne, Nicolas Fillot, Nathalie Bouscharain, Laurent Joly, Tribology Letters (2016) 64:25 , 2017, Tribology Letters.
[6] G. Morales-Espejel,et al. The Influence of Tribolayer Formation on Tribological Performance of Rolling/Sliding Contacts , 2017, Tribology Letters.
[7] W. Tysoe. On Stress-Induced Tribochemical Reaction Rates , 2017, Tribology Letters.
[8] Xin He,et al. Mechanochemistry of Physisorbed Molecules at Tribological Interfaces: Molecular Structure Dependence of Tribochemical Polymerization. , 2017, Langmuir : the ACS journal of surfaces and colloids.
[9] Hugh Spikes,et al. Effect of Base Oil Structure on Elastohydrodynamic Friction , 2017, Tribology Letters.
[10] A. Martini,et al. Mechanochemistry at Solid Surfaces: Polymerization of Adsorbed Molecules by Mechanical Shear at Tribological Interfaces. , 2017, ACS applied materials & interfaces.
[11] N. Voeltzel,et al. Rheology of an Ionic Liquid with Variable Carreau Exponent: A Full Picture by Molecular Simulation with Experimental Contribution , 2016, Tribology Letters.
[12] Vittorio Sansalone,et al. Emergence of form from function—Mechanical engineering approaches to probe the role of stem cell mechanoadaptation in sealing cell fate , 2016, Bioarchitecture.
[13] Hugh Spikes,et al. On the Mechanism of ZDDP Antiwear Film Formation , 2016, Tribology Letters.
[14] H. Spikes,et al. Nonequilibrium Molecular Dynamics Simulations of Organic Friction Modifiers Adsorbed on Iron Oxide Surfaces. , 2016, Langmuir : the ACS journal of surfaces and colloids.
[15] P. Kotvis,et al. In Situ Measurements of Boundary Film Formation Pathways and Kinetics: Dimethyl and Diethyl Disulfide on Copper , 2016, Tribology Letters.
[16] A. Ponjavic,et al. Flow measurements of a polyphenyl ether oil in an elastohydrodynamic contact , 2016, Journal of physics. Condensed matter : an Institute of Physics journal.
[17] W. Tysoe,et al. Influence of Potential Shape on Constant-Force Atomic-Scale Sliding Friction Models , 2015, Tribology Letters.
[18] W. Tysoe,et al. On the Commonality Between Theoretical Models for Fluid and Solid Friction, Wear and Tribochemistry , 2015, Tribology Letters.
[19] R. W. Carpick,et al. Mechanisms of antiwear tribofilm growth revealed in situ by single-asperity sliding contacts , 2015, Science.
[20] W. Tysoe,et al. Shear-Induced Mechanochemistry: Pushing Molecules Around , 2015 .
[21] J. Robinson,et al. Direct mechanochemical cleavage of functional groups from graphene , 2015, Nature Communications.
[22] Hugh Spikes,et al. History, Origins and Prediction of Elastohydrodynamic Friction , 2014, Tribology Letters.
[23] C. Zhu. Mechanochemitry: A Molecular Biomechanics View of Mechanosensing , 2014, Annals of Biomedical Engineering.
[24] L. Takács. The Historical Development of Mechanochemistry , 2013 .
[25] T. Jacobs,et al. Nanoscale wear as a stress-assisted chemical reaction. , 2013, Nature nanotechnology.
[26] D. Marx,et al. Covalent mechanochemistry: theoretical concepts and computational tools with applications to molecular nanomechanics. , 2012, Chemical reviews.
[27] Jonathan H. Green,et al. On the Increase in Boundary Friction with Sliding Speed , 2012, Tribology Letters.
[28] S. Craig. Mechanochemistry: A tour of force , 2012, Nature.
[29] James Mack,et al. Mechanochemistry: opportunities for new and cleaner synthesis. , 2012, Chemical Society reviews.
[30] Dmitrii E Makarov,et al. Chemical reactions modulated by mechanical stress: extended Bell theory. , 2011, The Journal of chemical physics.
[31] M. Müser. Velocity dependence of kinetic friction in the Prandtl-Tomlinson model , 2011 .
[32] T. Martínez,et al. Reactive cross-talk between adjacent tension-trapped transition states. , 2011, Journal of the American Chemical Society.
[33] Jeremy M. Lenhardt,et al. From molecular mechanochemistry to stress-responsive materials , 2011 .
[34] A. Cheetham,et al. Rapid room-temperature synthesis of zeolitic imidazolate frameworks by using mechanochemistry. , 2010, Angewandte Chemie.
[35] Hugh Spikes,et al. Frictional Properties of Automatic Transmission Fluids: Part I—Measurement of Friction–Sliding Speed Behavior , 2010 .
[36] J. Cayer-Barrioz,et al. A non-Newtonian model based on Ree–Eyring theory and surface effect to predict friction in elastohydrodynamic lubrication , 2010 .
[37] Jeffrey R. Moore,et al. The molecular basis of frictional loads in the in vitro motility assay with applications to the study of the loaded mechanochemistry of molecular motors , 2010, Cytoskeleton.
[38] G. Kaupp. Mechanochemistry: the varied applications of mechanical bond-breaking , 2009 .
[39] B. Gotsmann,et al. Atomistic wear in a single asperity sliding contact. , 2008, Physical review letters.
[40] J. Cayer-Barrioz,et al. Friction dynamics of confined weakly adhering boundary layers. , 2008, Langmuir : the ACS journal of surfaces and colloids.
[41] M. Salmeron,et al. Velocity dependence of friction and hydrogen bonding effects. , 2006, Physical review letters.
[42] P. Deymier,et al. Molecular dynamics simulations of friction between alkylsilane monolayers , 2006 .
[43] H. Clausen‐Schaumann,et al. Mechanochemistry: the mechanical activation of covalent bonds. , 2005, Chemical reviews.
[44] Shaoyi Jiang,et al. Tip-Based Hybrid Simulation Study of Frictional Properties of Self-Assembled Monolayers: Effects of Chain Length, Terminal Group, Scan Direction, and Scan Velocity , 2003 .
[45] E. Riedo,et al. Interaction potential and hopping dynamics governing sliding friction. , 2003, Physical review letters.
[46] C Drummond,et al. Friction between two weakly adhering boundary lubricated surfaces in water. , 2003, Physical review. E, Statistical, nonlinear, and soft matter physics.
[47] E. Meyer,et al. Friction and Wear on the Atomic Scale , 2003 .
[48] M. Müser. Nature of mechanical instabilities and their effect on kinetic friction. , 2002, Physical review letters.
[49] M. Stevens,et al. Friction between Alkylsilane Monolayers: Molecular Simulation of Ordered Monolayers , 2002 .
[50] Meyer,et al. Velocity dependence of atomic friction , 2000, Physical review letters.
[51] C. Bustamante,et al. The mechanochemistry of molecular motors. , 2000, Biophysical journal.
[52] M. Salmeron,et al. The atomic scale origin of wear on mica and its contribution to friction , 1999 .
[53] M. Muraki,et al. Derivation of basic rheological parameters from experimental elastohydrodynamic lubrication traction curves of low-viscosity lubricants , 1999 .
[54] J. Aimé,et al. Tribological behavior of a polymer grafted on silanized silica probed with a nanotip , 1997 .
[55] D. Tildesley,et al. The molecular dynamics simulation of boundary-layer lubrication , 1997 .
[56] J. Dickinson,et al. A scanning force microscope study of a tribochemicalsystem: stress-enhanced dissolution , 1997 .
[57] Reinhard Miller,et al. Dilational and shear rheology of adsorption layers at liquid interfaces , 1996 .
[58] M. M. Chaudhri,et al. Boundary lubrication and shear properties of thin solid films of dioctadecyl dimethyl ammonium chloride (TA 100) , 1993 .
[59] McClelland,et al. Molecular dynamics study of sliding friction of ordered organic monolayers. , 1993, Physical review letters.
[60] J. Schmelzer,et al. Rheology of non-Newtonian glass-forming melts , 1993, Journal of Materials Science.
[61] R. Armstrong,et al. The effect of dislocation drag on the stress-strain behavior of F.C.C. metals , 1992 .
[62] D. Tománek,et al. Calculation of an Atomically Modulated Friction Force in Atomic-Force Microscopy , 1991 .
[63] Farshid Sadeghi,et al. Non-newtonian thermal elastohydrodynamic lubrication , 1991 .
[64] V. Boldyrev,et al. Mechanochemistry and mechanical activation of solids , 1990 .
[65] A. Keller,et al. Degradation of polymer solutions in extensional flows , 1990 .
[66] A. Keller,et al. Flow‐induced scission of isolated macromolecules , 1988 .
[67] J W Richmond,et al. Traction in Elastohydrodynamic Contacts , 1988 .
[68] Masayoshi Muraki,et al. Molecular structure of synthetic hydrocarbon oils and their rheological properties governing traction characteristics , 1987 .
[69] K. Johnson,et al. The Rheological Properties of Elastohydrodynamic Lubricants , 1986 .
[70] Richard P. Wool,et al. Infrared and raman spectroscopy of stressed polyethylene , 1986 .
[71] A. I. Leonov,et al. On the theory of the adhesive friction of elastomers , 1986 .
[72] A. I. Leonov,et al. On the Theory of Adhesive Friction of Elastomers , 1985 .
[73] D. C. Evans,et al. The shear properties of Langmuir—Blodgett layers , 1982, Proceedings of the Royal Society of London. A. Mathematical and Physical Sciences.
[74] T. F. Conry,et al. Thermal Effects on Traction in EHD Lubrication , 1981 .
[75] A. J. Moore,et al. The effect of temperature on traction in elastohydrodynamic lubrication , 1980, Philosophical Transactions of the Royal Society of London. Series A, Mathematical and Physical Sciences.
[76] A. J. Moore,et al. Elastohydrodynamic lubrication at high pressures II. Non-Newtonian behaviour , 1979, Proceedings of the Royal Society of London. A. Mathematical and Physical Sciences.
[77] G. I. Bell. Models for the specific adhesion of cells to cells. , 1978, Science.
[78] A. J. Moore,et al. Elastohydrodynamic lubrication at high pressures , 1978, Proceedings of the Royal Society of London. A. Mathematical and Physical Sciences.
[79] S. N. Zhurkov,et al. The physical principles of the temperature-time dependence of the strength of solids , 1978 .
[80] S. Burns,et al. Thermally activated crack propagation — theory , 1977 .
[81] J. L. Tevaarwerk,et al. Shear behaviour of elastohydrodynamic oil films , 1977, Proceedings of the Royal Society of London. A. Mathematical and Physical Sciences.
[82] J. L. Tevaarwerk,et al. A simple non-linear constitutive equation for elastohydrodynamic oil films , 1975 .
[83] P. Gennes. Coil-stretch transition of dilute flexible polymers under ultrahigh velocity gradients , 1974 .
[84] A. J. Moore,et al. Non-Newtonian behaviour in elastohydrodynamic lubrication , 1974, Proceedings of the Royal Society of London. A. Mathematical and Physical Sciences.
[85] S. N. Zhurkov,et al. Atomic mechanism of fracture of solid polymers , 1974 .
[86] N. Konstantinova,et al. The Actual Contact Area and Friction Properties of Elastomers under Frictional Contact with Solid Surfaces , 1971 .
[87] I. Ward. Review: The yield behaviour of polymers , 1971 .
[88] A. Schallamach. How Does Rubber Slide , 1971 .
[89] G. Thackray,et al. The use of a mathematical model to describe isothermal stress-strain curves in glassy thermoplastics , 1968, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.
[90] M. A. Plint. Third Paper: Traction in Elastohydrodynamic Contacts , 1967 .
[91] G. Schoeck. The Activation Energy of Dislocation Movement , 1965, February 1.
[92] S. N. Zhurkov. Kinetic concept of the strength of solids , 1965, International journal of fracture mechanics.
[93] A. Schallamach. A theory of dynamic rubber friction , 1963 .
[94] F. Bueche. Mechanical Degradation of High Polymers , 1960 .
[95] H. Eyring,et al. THE VISCOSITY OF HIGH POLYMERS-THE RANDOM WALK OF A GROUP OF CONNECTED SEGMENTS. , 1958, Proceedings of the National Academy of Sciences of the United States of America.
[96] Henry Eyring,et al. RELAXATION THEORY OF TRANSPORT PROBLEMS IN CONDENSED SYSTEMS , 1958 .
[97] A. Schallamach. Friction and abrasion of rubber , 1958 .
[98] P. E. Pierce,et al. Application of ree-eyring generalized flow theory to suspensions of spherical particles , 1956 .
[99] A. Seeger,et al. CXXXII. The generation of lattice defects by moving dislocations, and its application to the temperature dependence of the flow-stress of F.C.C. crystals , 1955 .
[100] F. Bueche. Tensile Strength of Plastics above the Glass Temperature , 1955 .
[101] Henry Eyring,et al. Theory of Non‐Newtonian Flow. I. Solid Plastic System , 1955 .
[102] N. Mott. Dislocations, Work-Hardening and Creep , 1955, Nature.
[103] A. Schallamach,et al. The Velocity and Temperature Dependence of Rubber Friction , 1953 .
[104] A. Cottrell. The time laws of creep , 1952 .
[105] P. Feltham. Influence of Structure on the Plastic Flow of Steel above the A3-Point , 1952, Nature.
[106] N. Mott. Slip at Grain Boundaries and Grain Growth in Metals , 1948 .
[107] W. J. Morris,et al. Mechanical Degradation of Large Molecules , 1947, Nature.
[108] D. D. Eley,et al. Mechanisms for the Relaxation Theory of Viscosity , 1944, Nature.
[109] H. Eyring,et al. Mechanisms for the Relaxation Theory of Viscosity , 1944, Nature.
[110] Henry Eyring,et al. Mechanical Properties of Polymeric Materials , 1943 .
[111] A. Gemant. Frictional Phenomena. XI: C‐Solids , 1942 .
[112] N. Bruyne. Note on viscous and plastic flow , 1941 .
[113] Henry Eyring,et al. The Theory of Absolute Reaction Rates and its Application to Viscosity and Diffusion in the Liquid State. , 1941 .
[114] F. Seitz,et al. Theory of the Plastic Properties of Solids. III , 1941 .
[115] W. Kauzmann,et al. The Viscous Flow of Large Molecules , 1940 .
[116] W. Moore,et al. Theory of the Viscosity of Unimolecular Films , 1938 .
[117] R. Ewell. The Reaction Rate Theory of Viscosity and Some of its Applications , 1938 .
[118] H. Eyring,et al. Theory of the Viscosity of Liquids as a Function of Temperature and Pressure , 1937 .
[119] E. Andrade,et al. Glide in metal single crystals , 1937 .
[120] E. Schmid,et al. Zur Temperaturabhängigkeit der Kristallplastizität , 1936 .
[121] H. Eyring. Viscosity, Plasticity, and Diffusion as Examples of Absolute Reaction Rates , 1936 .
[122] W. C. Bray. The Fundamental Principles of Chemistry. , 1910 .
[123] S. Antolovich,et al. Plastic strain localization in metals: origins and consequences , 2014 .
[124] Johnathan N. Brantley,et al. Polymer mechanochemistry: the design and study of mechanophores , 2013 .
[125] Michael M. Khonsari,et al. Full EHL Simulations Using the Actual Ree–Eyring Model for Shear-Thinning Lubricants , 2009 .
[126] Henry Peredur Evans,et al. Modeling of Film Thickness and Traction in a Variable Ratio Traction Drive Rig , 2004 .
[127] Henry Peredur Evans,et al. Comparison of non-Newtonian EHL models in high sliding applications , 2001 .
[128] Junkichi Sohma,et al. Mechanochemistry of polymers , 1989 .
[129] D. Tabor,et al. Shear Properties of Thin Polymeric Films , 1978 .
[130] D. Tabor,et al. The Shear Properties of Poly (N-Alkyl Methacrylates) in Concentrated Contacts , 1977 .
[131] U. F. Kocks. Thermodynamics and kinetics of slip , 1975 .
[132] R. Steijn. Sliding Experiments with Polytetrafluoroethylene , 1968 .
[133] A. I. El'kin,et al. Friction properties of high elastic materials , 1965 .
[134] G. B. Gibbs. The Thermodynamics of Thermally-Activated Dislocation Glide , 1965 .
[135] F. W. Smith,et al. The Effect of Temperature in Concentrated Contact Lubrication , 1962 .
[136] E. Orowan,et al. Problems of plastic gliding , 1940 .
[137] H. Eyring,et al. Pressure and Temperature Effects on the Viscosity of Liquids , 1940 .
[138] K. Knopp,et al. Enzyklopädie der mathematischen Wissenschaften mit Einschluss ihrer Anwendungen , 1939 .
[139] L. Prandtl,et al. Ein Gedankenmodell zur kinetischen Theorie der festen Körper , 1928 .