Asymmetric pathways in the electrochemical conversion reaction of NiO as battery electrode with high storage capacity
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Ulrike Boesenberg | Matthew A. Marcus | Alpesh K. Shukla | Tanghong Yi | Eamon McDermott | Pei Fen Teh | Madhavi Srinivasan | Alexander Moewes | Jordi Cabana | J. Cabana | M. Marcus | M. Srinivasan | A. Shukla | Tanghong Yi | U. Boesenberg | A. Moewes | E. McDermott | P. Teh | Eamon McDermott
[1] Masao Yonemura,et al. Room-temperature miscibility gap in LixFePO4 , 2006, Nature materials.
[2] P. H. Lewis. THE EFFECTS OF OXYGEN ADSORPTION ON THE K X-RAY ABSORPTION EDGE OF ALUMINA SUPPORTED NICKEL , 1960 .
[3] Doron Aurbach,et al. Challenges in the development of advanced Li-ion batteries: a review , 2011 .
[4] Andrew J. Gmitter,et al. Subsurface diffusion of oxide electrolyte decomposition products in metal fluoride nanocomposite electrodes , 2013 .
[5] G. Amatucci,et al. Tracking lithium transport and electrochemical reactions in nanoparticles , 2012, Nature Communications.
[6] E. Stern,et al. Analysis of multiple-scattering XAFS data using theoretical standards , 1995 .
[7] Robert C. Wolpert,et al. A Review of the , 1985 .
[8] Graeme A. Snook,et al. A furnace and environmental cell for the in situ investigation of molten salt electrolysis using high-energy X-ray diffraction. , 2012, Journal of synchrotron radiation.
[9] David J. Larson,et al. Three-dimensional atom probe observation of nanoscale titanium-oxygen clustering in an oxide-dispersion-strengthened Fe-12Cr-3W-0.4Ti + Y2O3 ferritic alloy , 2001 .
[10] Sang Yun Lee,et al. Local structural characterization for electrochemical insertion-extraction of lithium into CoO with X-ray absorption spectroscopy , 2002 .
[11] A. Navrotsky,et al. Nanophase Transition Metal Oxides Show Large Thermodynamically Driven Shifts in Oxidation-Reduction Equilibria , 2010, Science.
[12] C. Delmas,et al. P2-Na(x)VO2 system as electrodes for batteries and electron-correlated materials. , 2013, Nature materials.
[13] J. Cabana,et al. Electron Tomography Analysis of Reaction Path during Formation of Nanoporous NiO by Solid State Decomposition , 2014 .
[14] Xiangyun Song,et al. A comprehensive understanding of electrode thickness effects on the electrochemical performances of Li-ion battery cathodes , 2012 .
[15] Jean-Marie Tarascon,et al. Li-O2 and Li-S batteries with high energy storage. , 2011, Nature materials.
[16] J. Cabana,et al. Beyond Intercalation‐Based Li‐Ion Batteries: The State of the Art and Challenges of Electrode Materials Reacting Through Conversion Reactions , 2010, Advanced materials.
[17] R. Hennig,et al. Unintended phosphorus doping of nickel nanoparticles during synthesis with TOP: a discovery through structural analysis. , 2012, Nano letters.
[18] Kristina Edström,et al. Recent findings and prospects in the field of pure metals as negative electrodes for Li-ion batteries , 2007 .
[19] H. Ahn,et al. Highly ordered mesoporous NiO anode material for lithium ion batteries with an excellent electrochemical performance , 2011 .
[20] S. Hull,et al. Ordering of Nitrogen in Nickel Nitride Ni3N Determined by Neutron Diffraction. , 2002 .
[21] Kristin A. Persson,et al. First-Principles Investigation of the Li-Fe-F Phase Diagram and Equilibrium and Nonequilibrium Conversion Reactions of Iron Fluorides with Lithium , 2008 .
[22] K. Fujino,et al. X-Ray Determination of Electron-Density Distributions in Oxides, MgO, MnO, CoO, and NiO, and Atomic Scattering Factors of their Constituent Atoms , 1979 .
[23] S. Hull,et al. Ordering of nitrogen in nickel nitride Ni(3)N determined by neutron diffraction. , 2001, Inorganic chemistry.
[24] J. Gustafson,et al. Self-limited growth of a thin oxide layer on Rh(111). , 2004, Physical review letters.
[25] B. L. Henke,et al. X-Ray Interactions: Photoabsorption, Scattering, Transmission, and Reflection at E = 50-30,000 eV, Z = 1-92 , 1993 .
[26] Jie Gao,et al. In operando X-ray studies of the conversion reaction in Mn3O4 lithium battery anodes , 2013 .
[27] Feng Huang,et al. Nanoparticles: Strained and Stiff , 2004, Science.
[28] C. Louis,et al. The effect of gold particle size on AuAu bond length and reactivity toward oxygen in supported catalysts , 2006 .
[29] Glenn G. Amatucci,et al. Formation, dynamics, and implication of solid electrolyte interphase in high voltage reversible conversion fluoride nanocomposites , 2010 .
[30] J. Tarascon,et al. On the Origin of the Extra Electrochemical Capacity Displayed by MO/Li Cells at Low Potential , 2002 .
[31] M. Marcus. X-ray photon-in/photon-out methods for chemical imaging , 2010 .
[32] M. Armand,et al. Building better batteries , 2008, Nature.
[33] Montse Casas-Cabanas,et al. Deciphering the structural transformations during nickel oxyhydroxide electrode operation. , 2007, Journal of the American Chemical Society.
[34] Yongfeng Hu,et al. VLS‐PGM Beamline at the Canadian Light Source , 2007 .
[35] C. Mijoule,et al. First-principles calculations of the diffusion of atomic oxygen in nickel: thermal expansion contribution , 2007, Journal of physics. Condensed matter : an Institute of Physics journal.
[36] V. Harris,et al. Determination of crystallite size in a magnetic nanocomposite using extended x-ray absorption fine structure , 2003 .
[37] J. Tarascon,et al. In situ measurements of Li ion battery electrode material conductivity : Application to LixCoO2 and conversion reactions , 2007 .
[38] Jason Graetz,et al. Conversion reaction mechanisms in lithium ion batteries: study of the binary metal fluoride electrodes. , 2011, Journal of the American Chemical Society.
[39] J. Timoshenko,et al. Probing NiO nanocrystals by EXAFS spectroscopy , 2010 .
[40] Sylvie Grugeon,et al. Nano‐Sized Transition‐Metal Oxides as Negative‐Electrode Materials for Lithium‐Ion Batteries. , 2001 .
[41] M. Balasubramanian,et al. Structural and mechanistic revelations on an iron conversion reaction from pair distribution function analysis. , 2012, Angewandte Chemie.
[42] D. F. Ogletree,et al. In situ spectroscopic study of the oxidation and reduction of Pd(111). , 2005, Journal of the American Chemical Society.
[43] G. Hautier,et al. First Principles Study of the Li-Bi-F Phase Diagram and Bismuth Fluoride Conversion Reactions with Lithium , 2009 .
[45] J. Cabana,et al. Electroanalytical study of the viability of conversion reactions as energy storage mechanisms , 2014 .
[46] Yu‐Guo Guo,et al. Electrochemical lithiation synthesis of nanoporous materials with superior catalytic and capacitive activity , 2006, Nature materials.
[47] M. Mench,et al. Redox flow batteries: a review , 2011 .
[48] J. Banfield,et al. Water-driven structure transformation in nanoparticles at room temperature , 2003, Nature.
[49] D. Aurbach. Review of selected electrode–solution interactions which determine the performance of Li and Li ion batteries , 2000 .
[50] Nenad M. Markovic,et al. The road from animal electricity to green energy: combining experiment and theory in electrocatalysis , 2012 .
[51] G. Chen,et al. Direct Electrochemical Reduction of Titanium Dioxide to Titanium in Molten Calcium Chloride. , 2001 .
[52] R. Hoppe,et al. Ein neues Oxoniccolat: Li2NiO2 , 1972 .
[53] J. P. Neumann,et al. The Ni−O (Nickel-Oxygen) system , 1984 .
[54] A. Kortan,et al. Phase diagram of oxygen chemisorbed on nickel (111) , 1981 .
[55] A. Jacobson,et al. Nickel K-edge x-ray absorption fine structure of lithium nickel oxides , 1993 .
[56] S. Nagakura. Study of Metallic Carbides by Electron Diffraction : Part II. Crystal Structure Analysis of Nickel Carbide , 1958 .
[57] A. Roßberg,et al. Complexation of uranium(VI) with protocatechuic acid—application of iterative transformation factor analysis to EXAFS spectroscopy , 2003, Analytical and bioanalytical chemistry.
[58] Palani Balaya,et al. Enhanced Potential of Amorphous Electrode Materials: Case Study of RuO2 , 2008 .
[59] Liquan Chen,et al. Investigation on porous MnO microsphere anode for lithium ion batteries , 2011 .
[60] P. Taberna,et al. On the origin of the extra capacity at low potential in materials for Li batteries reacting through conversion reaction , 2012 .
[61] Maja Krcmar,et al. Vacancy mechanism of high oxygen solubility and nucleation of stable oxygen-enriched clusters in Fe. , 2007, Physical review letters.