Literature DB >> 30046074

Niobium tungsten oxides for high-rate lithium-ion energy storage.

Kent J Griffith1, Kamila M Wiaderek2, Giannantonio Cibin3, Lauren E Marbella1, Clare P Grey4.   

Abstract

The maximum power output and minimum charging time of a lithium-ion battery depend on both ionic and electronic transport. Ionic diffusion within the electrochemically active particles generally represents a fundamental limitation to the rate at which a battery can be charged and discharged. To compensate for the relatively slow solid-state ionic diffusion and to enable high power and rapid charging, the active particles are frequently reduced to nanometre dimensions, to the detriment of volumetric packing density, cost, stability and sustainability. As an alternative to nanoscaling, here we show that two complex niobium tungsten oxides-Nb16W5O55 and Nb18W16O93, which adopt crystallographic shear and bronze-like structures, respectively-can intercalate large quantities of lithium at high rates, even when the sizes of the niobium tungsten oxide particles are of the order of micrometres. Measurements of lithium-ion diffusion coefficients in both structures reveal room-temperature values that are several orders of magnitude higher than those in typical electrode materials such as Li4Ti5O12 and LiMn2O4. Multielectron redox, buffered volume expansion, topologically frustrated niobium/tungsten polyhedral arrangements and rapid solid-state lithium transport lead to extremely high volumetric capacities and rate performance. Unconventional materials and mechanisms that enable lithiation of micrometre-sized particles in minutes have implications for high-power applications, fast-charging devices, all-solid-state energy storage systems, electrode design and material discovery.

Entities:  

Year:  2018        PMID: 30046074     DOI: 10.1038/s41586-018-0347-0

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  31 in total

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2.  Mesoporous TiO2-B microspheres with superior rate performance for lithium ion batteries.

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3.  Structural Stability from Crystallographic Shear in TiO2-Nb2O5 Phases: Cation Ordering and Lithiation Behavior of TiNb24O62.

Authors:  Kent J Griffith; Anatoliy Senyshyn; Clare P Grey
Journal:  Inorg Chem       Date:  2017-03-20       Impact factor: 5.165

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6.  High-Rate Intercalation without Nanostructuring in Metastable Nb2O5 Bronze Phases.

Authors:  Kent J Griffith; Alexander C Forse; John M Griffin; Clare P Grey
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  22 in total

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Review 2.  Reversible and rapid calcium intercalation into molybdenum vanadium oxides.

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6.  Investigating the Perovskite Ag1-3xLaxNbO3 as a High-Rate Negative Electrode for Li-Ion Batteries.

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7.  1H Detected Relayed Dynamic Nuclear Polarization.

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8.  Discoloration Effect and One-Step Synthesis of Hydrogen Tungsten and Molybdenum Bronze (H x MO3) using Liquid Metal at Room Temperature.

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9.  Controllable two-dimensional movement and redistribution of lithium ions in metal oxides.

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10.  Infinitesimal sulfur fusion yields quasi-metallic bulk silicon for stable and fast energy storage.

Authors:  Jaegeon Ryu; Ji Hui Seo; Gyujin Song; Keunsu Choi; Dongki Hong; Chongmin Wang; Hosik Lee; Jun Hee Lee; Soojin Park
Journal:  Nat Commun       Date:  2019-05-28       Impact factor: 14.919

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