Molecular dynamics study of lubricant depletion by pulsed laser heating
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[1] D. Bogy,et al. Effect of Functional End-Groups on Lubricant Reflow in Heat-Assisted Magnetic Recording (HAMR) , 2017, Tribology Letters.
[2] C. Wong,et al. Molecular dynamics studies of lubricant depletion under moving laser heating: Effects of laser power and film thickness , 2015 .
[3] Zhejie Liu,et al. 4–5 Tb/in $^{{{2}}}$ Heat-Assisted Magnetic Recording by Short-Pulse Laser Heating , 2015, IEEE Transactions on Magnetics.
[4] F. Talke,et al. Investigation of Temperature Dependence of Raman Shift of Diamond-Like Carbon Coatings Used in Heat-Assisted Magnetic Recording , 2015, IEEE Transactions on Magnetics.
[5] D. Bogy,et al. Lubricant reflow after laser heating in heat assisted magnetic recording , 2015 .
[6] F. Talke,et al. Molecular Dynamics Simulation of Lubricant Transfer at the Head-Disk Interface , 2014, IEEE Transactions on Magnetics.
[7] Zhejie Liu,et al. Analysis of Heat-Assisted Magnetic Recording to Density of 4 Tb/in $^{\textbf {2}}$ , 2014, IEEE Transactions on Magnetics.
[8] Baoxi Xu,et al. Performance benefits from pulsed laser heating in heat assisted magnetic recording , 2014 .
[9] David B. Bogy,et al. Lubricant Flow and Evaporation Model for Heat-Assisted Magnetic Recording Including Functional End-Group Effects and Thin Film Viscosity , 2013, Tribology Letters.
[10] L. Biegler,et al. A Description of Multiscale Modeling for the Head-Disk Interface Focusing on Bottom-Level Lubricant and Carbon Overcoat Models , 2013 .
[11] E. Jin,et al. Pulsed Thermally Assisted Magnetic Recording , 2013, IEEE Transactions on Magnetics.
[12] C. Wong,et al. Lubricant evolution and depletion under laser heating: a molecular dynamics study , 2012 .
[13] Yansheng Ma,et al. Experimental Study of Lubricant Depletion in Heat Assisted Magnetic Recording over the Lifetime of the Drive , 2012, Tribology Letters.
[14] Sungae Lee,et al. The Change in Surface Properties of Magnetic Recording Media Under Pulsed Laser Application , 2012, Tribology Letters.
[15] Bo Liu,et al. A Model for Laser Induced Lubricant Depletion in Heat-Assisted Magnetic Recording , 2012, Tribology Letters.
[16] Yan Zeng,et al. Numerical study on thermal-induced lubricant depletion in laser heat-assisted magnetic recording systems , 2012 .
[17] Yan Zeng,et al. Evaporation of Polydisperse Perfluoropolyether Lubricants in Heat-Assisted Magnetic Recording , 2011 .
[18] F. E. Talke,et al. Enhanced Photo-Thermal Stability of Modified PFPE Lubricants Under Laser Beam Exposure , 2011, IEEE Transactions on Magnetics.
[19] Frank E. Talke,et al. Modeling laser induced lubricant depletion in heat-assisted-magnetic recording systems using a multiple-layered disk structure , 2011 .
[20] Norio Tagawa,et al. Study on Lubricant Depletion Induced by Laser Heating in Thermally Assisted Magnetic Recording Systems: Effect of Lubricant Thickness and Bonding Ratio , 2010 .
[21] N. Tagawa,et al. Study of Lubricant Depletion Induced by Laser Heating in Thermally Assisted Magnetic Recording Systems—Effect of Lubricant Film Materials , 2009, IEEE Transactions on Magnetics.
[22] M. Fatih Erden,et al. Heat Assisted Magnetic Recording , 2008, Proceedings of the IEEE.
[23] Frank Mücklich,et al. Advanced design of periodical architectures in bulk metals by means of Laser Interference Metallurgy , 2007 .
[24] Lin Wu,et al. Modelling and simulation of the lubricant depletion process induced by laser heating in heat-assisted magnetic recording system , 2007 .
[25] C. Peng,et al. Heat Assisted Magnetic Recording , 2006, INTERMAG 2006 - IEEE International Magnetics Conference.
[26] Andrew J. Gellman,et al. Kinetics of laser induced desorption and decomposition of Fomblin Zdol on carbon overcoats , 2005 .
[27] W. P. Latham,et al. The role of electron–phonon coupling in ultrafast laser heating , 2005 .
[28] A. Carlsson,et al. The adsorption and reaction of low molecular weight alkanes on metallic single crystal surfaces , 2003 .
[29] Michael F. Toney,et al. Temperature dependent magnetic properties of highly chemically ordered Fe55−xNixPt45L10 films , 2002 .
[30] M. Stevens. Interfacial Fracture between Highly Cross-Linked Polymer Networks and a Solid Surface: Effect of Interfacial Bond Density , 2001 .
[31] J. Güdde,et al. The role of electron–phonon coupling in femtosecond laser damage of metals , 1999 .
[32] Steve Plimpton,et al. Fast parallel algorithms for short-range molecular dynamics , 1993 .
[33] A. Hughes,et al. A spectroscopic study of the adsorption and reactions of methanol, formaldehyde and methyl formate on clean and oxygenated Cu(110) surfaces , 1985 .
[34] N. Tagawa,et al. Lubricant Depletion Characteristics Induced by Rapid Laser Heating in Thermally Assisted Magnetic Recording , 2011, IEEE Transactions on Magnetics.
[35] Claude Rullière,et al. Femtosecond Laser Pulses , 1998 .