Bulk-Type All-Solid-State Lithium-Ion Batteries: Remarkable Performances of a Carbon Nanofiber-Supported MgH2 Composite Electrode.
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[1] T. Ichikawa,et al. Electrochemical Performance of Titanium Hydride for Bulk-Type All-Solid-State Lithium-Ion Batteries , 2016 .
[2] A. Sakuda,et al. Electrode morphology in all-solid-state lithium secondary batteries consisting of LiNi1/3Co1/3Mn1/3O2 and Li2S-P2S5 solid electrolytes , 2016 .
[3] J. Bonnet,et al. Metal hydrides: an innovative and challenging conversion reaction anode for lithium-ion batteries , 2015, Beilstein journal of nanotechnology.
[4] Kiyotaka Goshome,et al. Anode properties of Al2O3-added MgH2 for all-solid-state lithium-ion batteries , 2015, Journal of Solid State Electrochemistry.
[5] V. Stavila,et al. Stable Interface Formation between TiS2 and LiBH4 in Bulk-Type All-Solid-State Lithium Batteries , 2015 .
[6] P. Reale,et al. Origin of the Voltage Hysteresis of MgH2 Electrodes in Lithium Batteries , 2015 .
[7] Liwu Huang,et al. MgH2–TiH2 mixture as an anode for lithium-ion batteries: synergic enhancement of the conversion electrode electrochemical performance , 2015 .
[8] L. Farina,et al. Lithium Alanates as Negative Electrodes in Lithium‐Ion Batteries , 2015 .
[9] T. Ichikawa,et al. Metal hydride-based materials towards high performance negative electrodes for all-solid-state lithium-ion batteries. , 2015, Chemical communications.
[10] R. Zidan,et al. Li-Driven Electrochemical Conversion Reaction of AlH3, LiAlH4, and NaAlH4 , 2015 .
[11] J. Bonnet,et al. Bottom-up preparation of MgH₂ nanoparticles with enhanced cycle life stability during electrochemical conversion in Li-ion batteries. , 2014, Nanoscale.
[12] Atsushi Unemoto,et al. Development of bulk-type all-solid-state lithium-sulfur battery using LiBH4 electrolyte , 2014 .
[13] Rui-jun Ma,et al. Synthesis, Structure Transformation, and Electrochemical Properties of Li2MgSi as a Novel Anode for Li‐lon Batteries , 2014 .
[14] S. Brutti,et al. Incorporation of Lithium by MgH2: An Ab Initio Study , 2013 .
[15] T. Ichikawa,et al. Anode properties of magnesium hydride catalyzed with niobium oxide for an all solid-state lithium-ion battery. , 2013, Chemical communications.
[16] J. Jumas,et al. Reactivity of complex hydrides Mg2FeH6, Mg2CoH5 and Mg2NiH4 with lithium ion: Far from equilibrium electrochemically driven conversion reactions , 2013 .
[17] B. Chowdari,et al. Metal oxides and oxysalts as anode materials for Li ion batteries. , 2013, Chemical reviews.
[18] S. Belin,et al. XAS investigations on nanocrystalline Mg2FeH6 used as a negative electrode of Li-ion batteries , 2013 .
[19] K. Takada,et al. All-solid-state lithium battery with LiBH4 solid electrolyte , 2013 .
[20] P. Reale,et al. Magnesium hydride as a high capacity negative electrode for lithium ion batteries , 2012 .
[21] J. Bonnet,et al. Reactivity of TiH2 hydride with lithium ion: Evidence for a new conversion mechanism , 2012 .
[22] D. Goers,et al. Development of carbon conductive additives for advanced lithium ion batteries , 2011 .
[23] S. Orimo,et al. Lithium Fast‐Ionic Conduction in Complex Hydrides: Review and Prospects , 2011 .
[24] Jean-Louis Bobet,et al. Carboxymethylcellulose and carboxymethylcellulose-formate as binders in MgH2–carbon composites negative electrode for lithium-ion batteries , 2011 .
[25] T. Ichikawa,et al. Superior Hydrogen Exchange Effect in the MgH2−LiBH4 System , 2010 .
[26] J. Tarascon,et al. 2LiH + M (M = Mg, Ti): New concept of negative electrode for rechargeable lithium-ion batteries , 2009 .
[27] Takayuki Ichikawa,et al. X-ray Absorption Spectroscopic Study on Valence State and Local Atomic Structure of Transition Metal Oxides Doped in MgH2 , 2009 .
[28] J. Tarascon,et al. Metal hydrides for lithium-ion batteries. , 2008, Nature materials.
[29] P. Bruce,et al. Nanomaterials for rechargeable lithium batteries. , 2008, Angewandte Chemie.
[30] M. Armand,et al. Building better batteries , 2008, Nature.
[31] S. Orimo,et al. Lithium superionic conduction in lithium borohydride accompanied by structural transition , 2007 .
[32] K. Tadanaga,et al. High rate performances of all-solid-state In/LiCoO2 cells with the Li2S–P2S5 glass–ceramic electrolytes , 2006 .
[33] Fuminori Mizuno,et al. All-solid-state lithium secondary batteries using sulfide-based glass–ceramic electrolytes , 2006 .
[34] R. Torresi,et al. Cathodes for lithium ion batteries: the benefits of using nanostructured materials , 2006 .
[35] P. Bruce,et al. Nanostructured materials for advanced energy conversion and storage devices , 2005, Nature materials.
[36] K. Tadanaga,et al. Characterization of Li2S–P2S5 glass-ceramics as a solid electrolyte for lithium secondary batteries , 2004 .
[37] R. Griessen,et al. Highly absorbing black Mg and rare-earth-Mg switchable mirrors , 2004 .
[38] D. Jenkinson,et al. Model estimates of CO2 emissions from soil in response to global warming , 1991, Nature.
[39] P. Norby,et al. All-solid-state lithium-sulfur battery based on a nanoconfined LiBH4 electrolyte , 2016 .
[40] Xiaoxiong Xu,et al. Lithium Superionic Conducting Oxysulfide Solid Electrolyte with Excellent Stability against Lithium Metal for All-Solid-State Cells , 2016 .