Molecular Dynamics Simulation Studies of the Structure of a Mixed Carbonate/LiPF6 Electrolyte near Graphite Surface as a Function of Electrode Potential
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[1] Masaaki Kawata,et al. Particle mesh Ewald method for three-dimensional systems with two-dimensional periodicity , 2001 .
[2] Xilin Chen,et al. Carbon scaffold structured silicon anodes for lithium-ion batteries , 2010 .
[3] O. Borodin,et al. A molecular dynamics simulation study of LiFePO4/electrolyte interfaces: structure and Li+ transport in carbonate and ionic liquid electrolytes. , 2009, Physical chemistry chemical physics : PCCP.
[4] P R C Kent,et al. Accurate static and dynamic properties of liquid electrolytes for Li-ion batteries from ab initio molecular dynamics. , 2011, The journal of physical chemistry. B.
[5] Oleg Borodin,et al. (Invited) Bulk and Interfacial Behavior of Ionic Liquids from Molecular Dynamics Simulations , 2010 .
[6] Stanislaw Lamperski,et al. The electric double-layer differential capacitance at and near zero surface charge for a restricted primitive model electrolyte. , 2009, The journal of physical chemistry. B.
[7] Oleg Borodin,et al. Development of many-body polarizable force fields for Li-battery components: 1. Ether, alkane, and carbonate-based solvents. , 2006, The journal of physical chemistry. B.
[8] Arumugam Manthiram,et al. Understanding the Improved Electrochemical Performances of Fe-Substituted 5 V Spinel Cathode LiMn1.5Ni0.5O4 , 2009 .
[9] B. Lucht,et al. Investigation of the Solid Electrolyte Interphase on MCMB and NG Electrodes in Lithium Tetrafluorooxalatophosphate [LiPF4C2O4] Based Electrolyte , 2011 .
[10] A. Manthiram,et al. Improved Electrochemical Performance of the 5 V Spinel Cathode LiMn1.5Ni0.42Zn0.08O4 by Surface Modification , 2009 .
[11] R. Kostecki,et al. Electrochemical and Infrared Studies of the Reduction of Organic Carbonates , 2001 .
[12] Oleg Borodin,et al. Quantum Chemistry Studies of the Oxidative Stability of Carbonate, Sulfone and Sulfonate-Based Electrolytes Doped with BF4 -, PF6 - Anions , 2011 .
[13] T. Jow,et al. Lithium ethylene dicarbonate identified as the primary product of chemical and electrochemical reduction of EC in 1.2 M LiPF6/EC:EMC electrolyte. , 2005, The journal of physical chemistry. B.
[14] Kang Xu,et al. Nonaqueous liquid electrolytes for lithium-based rechargeable batteries. , 2004, Chemical reviews.
[15] Kang Xu,et al. Lithium Methyl Carbonate as a Reaction Product of Metallic Lithium and Dimethyl Carbonate , 2005 .
[16] P. Balbuena,et al. Hybrid DFT Functional-Based Static and Molecular Dynamics Studies of Excess Electron in Liquid Ethylene Carbonate , 2011 .
[17] D. Grahame. The electrical double layer and the theory of electrocapillarity. , 1947, Chemical reviews.
[18] Z. Ogumi. Interfacial Reactions of Lithium-ion Batteries , 2010 .
[19] O. Borodin. Polarizable force field development and molecular dynamics simulations of ionic liquids. , 2009, The journal of physical chemistry. B.
[20] J. C. Burns,et al. Interpreting High Precision Coulometry Results on Li-ion Cells , 2011 .
[21] Seung‐Wan Song,et al. One-step hydrothermal synthesis of mesoporous anatase TiO₂ microsphere and interfacial control for enhanced lithium storage performance. , 2011, ACS applied materials & interfaces.
[22] O. Borodin,et al. Molecular simulations of the electric double layer structure, differential capacitance, and charging kinetics for N-methyl-N-propylpyrrolidinium bis(fluorosulfonyl)imide at graphite electrodes. , 2011, The journal of physical chemistry. B.
[23] Mark E. Tuckerman,et al. Reversible multiple time scale molecular dynamics , 1992 .
[24] X. Lou,et al. Glucose-Assisted One-Pot Synthesis of FeOOH Nanorods and Their Transformation to Fe3O4@Carbon Nanorods for Application in Lithium Ion Batteries , 2011 .
[25] Y. Kameda,et al. Ion–ion interactions of LiPF6 and LiBF4 in propylene carbonate solutions , 2009 .
[26] A. Cresce,et al. Preferential Solvation of Li+ Directs Formation of Interphase on Graphitic Anode , 2011 .
[27] O. Borodin,et al. Density functional theory study of the role of anions on the oxidative decomposition reaction of propylene carbonate. , 2011, The journal of physical chemistry. A.
[28] O. Borodin,et al. On the Influence of Surface Topography on the Electric Double Layer Structure and Differential Capacitance of Graphite/Ionic Liquid Interfaces , 2011 .
[29] H. Gerischer,et al. An interpretation of the double layer capacity of graphite electrodes in relation to the density of states at the Fermi level , 1985 .
[30] Oleg Borodin,et al. Molecular insights into the potential and temperature dependences of the differential capacitance of a room-temperature ionic liquid at graphite electrodes. , 2010, Journal of the American Chemical Society.
[31] M. Ue,et al. Electrochemical Properties of Quaternary Ammonium Salts for Electrochemical Capacitors , 1997 .
[32] Hoover,et al. Canonical dynamics: Equilibrium phase-space distributions. , 1985, Physical review. A, General physics.
[33] K. Loh,et al. High-yield synthesis of few-layer graphene flakes through electrochemical expansion of graphite in propylene carbonate electrolyte. , 2011, Journal of the American Chemical Society.
[34] J. Ilja Siepmann,et al. Influence of surface topology and electrostatic potential on water/electrode systems , 1995 .
[35] U. Nagashima,et al. Computationally efficient method to calculate the Coulomb interactions in three-dimensional systems with two-dimensional periodicity , 2002 .
[36] Timothy R. Forester,et al. SHAKE, rattle, and roll: Efficient constraint algorithms for linked rigid bodies , 2000 .
[37] R M Shelby,et al. Solvents' Critical Role in Nonaqueous Lithium-Oxygen Battery Electrochemistry. , 2011, The journal of physical chemistry letters.
[38] Nam-Soon Choi,et al. Effect of fluoroethylene carbonate additive on interfacial properties of silicon thin-film electrode , 2006 .
[39] Jeff Dahn,et al. Studies of Lithium Intercalation into Carbons Using Nonaqueous Electrochemical Cells , 1990 .
[40] L. Pastewka,et al. Charge-transfer model for carbonaceous electrodes in polar environments , 2011 .
[41] D. Frydel. Polarizable Poisson-Boltzmann equation: the study of polarizability effects on the structure of a double layer. , 2011, The Journal of chemical physics.
[42] N. Imanishi,et al. Interfacial resistance of the LiFePO4-C/PEO-LiTFSI composite electrode for dry-polymer lithium-ion batteries , 2011 .
[43] Seung‐Wan Song,et al. Surface layer formation on Sn anode: ATR FTIR spectroscopic characterization , 2009 .
[44] Masuhiro Mikami,et al. Rapid calculation of two-dimensional Ewald summation , 2001 .
[45] Ernest Yeager,et al. Differential Capacitance Study on the Basal Plane of Stress-Annealed Pyrolytic Graphite , 1972 .
[46] Shengbo Zhang,et al. Electrolytes for Low Temperature Operations of Li-Ion Batteries , 2007 .
[47] Kang Xu,et al. Interfacing electrolytes with electrodes in Li ion batteries , 2011 .
[48] Sehee Lee,et al. Ultrathin Direct Atomic Layer Deposition on Composite Electrodes for Highly Durable and Safe Li‐Ion Batteries , 2010, Advanced materials.
[49] U. Nagashima,et al. Response to “Comment on ‘Rapid calculation of the Coulomb component of the stress tensor for three-dimensional systems with two-dimensional periodicity’ ” [J. Chem. Phys. 117, 3524 (2002)] , 2002 .
[50] Cao Cuong Nguyen,et al. Interfacial structural stabilization on amorphous silicon anode for improved cycling performance in lithium-ion batteries , 2010 .
[51] O. Borodin,et al. Li+ Transport Mechanism in Oligo(Ethylene Oxide)s Compared to Carbonates , 2007 .
[52] Yuki Yamada,et al. Kinetics of lithium ion transfer at the interface between graphite and liquid electrolytes: effects of solvent and surface film. , 2009, Langmuir : the ACS journal of surfaces and colloids.
[53] A. Dey,et al. The Electrochemical Decomposition of Propylene Carbonate on Graphite , 1970 .
[54] Chunsheng Wang,et al. A polymer scaffold binder structure for high capacity silicon anode of lithium-ion battery. , 2010, Chemical communications.
[55] P. Balbuena,et al. Combined ab Initio Quantum Mechanics and Classical Molecular Dynamics Studies of Polyphosphazene Polymer Electrolytes: Competitive Solvation of Li+ and LiCF3SO3 , 2004 .
[56] Doron Aurbach,et al. Failure and Stabilization Mechanisms of Graphite Electrodes , 1997 .
[57] Doron Aurbach,et al. Identification of Surface Films Formed on Lithium in Propylene Carbonate Solutions , 1987 .
[58] A. J. Bhattacharyya,et al. Dielectric relaxation spectroscopy for evaluation of the influence of solvent dynamics on ion transport in succinonitrile-salt plastic crystalline electrolytes. , 2011, The journal of physical chemistry. B.
[59] D. Aurbach,et al. More on the performance of LiFePO4 electrodes—The effect of synthesis route, solution composition, aging, and temperature , 2007 .
[60] Weishan Li,et al. Theoretical investigations on oxidative stability of solvents and oxidative decomposition mechanism of ethylene carbonate for lithium ion battery use. , 2009, The journal of physical chemistry. B.
[61] Weishan Li,et al. The reductive mechanism of ethylene sulfite as solid electrolyte interphase film-forming additive fo , 2011 .
[62] Stewart K. Reed,et al. Electrochemical interface between an ionic liquid and a model metallic electrode. , 2007, The Journal of chemical physics.
[63] Oleg Borodin,et al. Quantum chemistry and molecular dynamics simulation study of dimethyl carbonate: ethylene carbonate electrolytes doped with LiPF6. , 2009, The journal of physical chemistry. B.
[64] B. Thole. Molecular polarizabilities calculated with a modified dipole interaction , 1981 .
[65] A. Kornyshev,et al. Ionic liquid near a charged wall: structure and capacitance of electrical double layer. , 2008, The journal of physical chemistry. B.
[66] Kang Xu,et al. Differentiating contributions to "ion transfer" barrier from interphasial resistance and Li+ desolvation at electrolyte/graphite interface. , 2010, Langmuir : the ACS journal of surfaces and colloids.
[67] O. Borodin,et al. Development of many-body polarizable force fields for Li-battery applications: 2. LiTFSI-doped Oligoether, polyether, and carbonate-based electrolytes. , 2006, The journal of physical chemistry. B.
[68] O. Borodin,et al. LiTFSI structure and transport in ethylene carbonate from molecular dynamics simulations. , 2006, The journal of physical chemistry. B.
[69] F. Nobili,et al. Lithium intercalation and interfacial kinetics of composite anodes formed by oxidized graphite and copper , 2009 .
[70] K. Amine,et al. Reduction Mechanisms of Ethylene, Propylene, and Vinylethylene Carbonates A Quantum Chemical Study , 2004 .
[71] U. Nagashima,et al. Rapid calculation of the Coulomb component of the stress tensor for three-dimensional systems with two-dimensional periodicity , 2001 .
[72] Mengqing Xu,et al. Theoretical study on reduction mechanism of 1,3-benzodioxol-2-one for the formation of solid electrolyte interface on anode of lithium ion battery , 2009 .
[73] N. Choi,et al. Surface layer formed on silicon thin-film electrode in lithium bis(oxalato) borate-based electrolyte , 2007 .
[74] O. Borodin,et al. Molecular dynamics simulations of atomically flat and nanoporous electrodes with a molten salt electrolyte. , 2010, Physical chemistry chemical physics : PCCP.
[75] Lidan Xing,et al. Theoretical insight into oxidative decomposition of propylene carbonate in the lithium ion battery. , 2009, The journal of physical chemistry. B.
[76] A. A. Kornyshev,et al. The anatomy of the double layer and capacitance in ionic liquids with anisotropic ions: Electrostriction vs. lattice saturation , 2010 .