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2020 roadmap on solid-state batteries

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2020 roadmap on solid-state batteries ( 2020-roadmap-solid-state-batteries )

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J. Phys. Energy 2 (2020) 032008 M Pasta et al [137] [138] [139] [140] [141] [142] [143] [144] [145] [146] [147] [148] [149] [150] [151] [152] [153] [154] [155] [156] [157] [158] [159] [160] [161] [162] [163] [164] Yi E, Wang W, Kieffer J and Laine R M 2017 Key parameters governing the densification of cubic-Li7La3Zr2O112 Li+ conductors J. Power Sources 352 156–64 Zheng J, Tang M and Hu Y Y 2016 Lithium ion pathway within Li7La3Zr2O12-polyethylene oxide composite electrolytes Angewandte Chemie - Int. edn 55 12538–42 Hitz G T, Zhang L, Ma Z, Fu Z, Wen Y, Gong Y, Dai J, Hamann T R, Hu L and Wachsman E D 2019 High-rate lithium cycling in a scalable trilayer Li-garnet-electrolyte architecture Materials Today 22 50–7 Gao K, He M, Li Y, Zhang Y, Gao J, Li X, Cui Z, Zhan Z and Zhang T 2019 Preparation of high-density garnet thin sheet electrolytes for all-solid-state Li-Metal batteries by tape-casting technique J. Alloys Compd. 791 923–8 Hull M N 1970 Recent progress in the development of solid electrolyte batteries Energy Convers. 10 215–26 Liang C C and Bro P 1969 A high-voltage, solid-state battery system J. Electrochem. Soc. 116 1322 Balkanski M, Julien C and Emery J Y 1989 Integrable lithium solid-state microbatteries J. Power Sources 26 615–22 Wang B 1996 Characterization of thin-film rechargeable lithium batteries with lithium cobalt oxide cathodes J. Electrochem. Soc. 143 3203 Maclaughlin C M 2019 Innovations in lithium ion battery technologies: A conversation with Will West, Nancy Dudney and Andrew Westover ACS Energy Letters 4 786–8 Garbayo I, Struzik M, Bowman W J, Pfenninger R, Stilp E and Rupp J L 2018 Glass-type polyamorphism in Li-Garnet thin film solid state battery conductors Adv. Energy Mater. 8 1702265 Oudenhoven J F M, Baggetto L and Notten P H L 2011 All-solid-state lithium-ion microbatteries: A review of various three-dimensional concepts Adv. Energy Mater. 1 10–33 Hisert J and Zarrow P 2017 Indium-tin oxide (ITO) used in flat-panel displays Indium Corporation www.indium.com/blog/indium-tin-oxide-ito-used-in-flat-panel-displays.php (Accessed 29 December 2019) Scientific Vacuum Systems Ltd 2019 Razor Blade Coating www.svs.co.uk/razor-blade (Accessed 29 December 2019) Cheah S K et al 2009 Self-Supported three-dimensional nanoelectrodes for microbattery applications Nano Lett. 9 3230–3 Maire E and Withers P J 2014 Quantitative X-ray tomography Int. Mater. Rev. 59 1–43 Daemi S R, Tan C, Volkenandt T, Cooper S J, Palacios-Padros A, Cookson J, Brett D J and Shearing P R 2018 Visualizing the Carbon Binder Phase of Battery Electrodes in Three Dimensions ACS Applied Energy Materials 1 3702–10 Shearing P R, Howard L E, J ́orgensen P S, Brandon N P and Harris S J 2010 Characterization of the 3-dimensional microstructure of a graphite negative electrode from a Li-ion battery Electrochemistry Communications 12 374–7 Cao C, Toney M F, Sham T K, Harder R, Shearing P R, Xiao X and Wang J 2020 Emerging X-ray imaging technologies for energy materials Mater. Today 34 132–47 Heenan T M, Tan C, Hack J, Brett D J and Shearing P R 2019 Developments in X-ray tomography characterization for electrochemical devices Mater. Today 31 69–85 Wood V 2018 X-ray tomography for battery research and development Nat. Rev. Mater. 3 293–5 Eastwood D S et al 2015 Three-dimensional characterization of electrodeposited lithium microstructures using synchrotron x-ray phase contrast imaging Chemical Communications 51 266–8 Tippens J et al 2019 Visualizing Chemomechanical Degradation of a Solid-State Battery Electrolyte ACS Energy Letters 4 1475–83 Harry K J, Hallinan D T, Parkinson D Y, MacDowell A A and Balsara N P 2014 Detection of subsurface structures underneath dendrites formed on cycled lithium metal electrodes Nat. Mater. 13 69–73 Taiwo O O et al 2017 Investigating the evolving microstructure of lithium metal electrodes in 3D using x-ray computed tomography Phys. Chem. Chem. Phys. 19 22111–20 Sun F et al 2016 Morphological evolution of electrochemically plated/stripped lithium microstructures investigated by synchrotron x-ray phase contrast tomography ACS Nano 10 7990–7 Shen F, Dixit M B, Xiao X and Hatzell K B 2018 Effect of pore connectivity on li dendrite propagation within LLZO electrolytes observed with synchrotron x-ray tomography ACS Energy Letters 3 1056–61 Sun F et al 2018 Visualizing the morphological and compositional evolution of the interface of InLi-anode thio-LISION electrolyte in an all-solid-state Li-S cell by: In operando synchrotron X-ray tomography and energy dispersive diffraction J. Mater. Chem. A 6 22489–96 Haas R et al 2019 Practical implications of using a solid electrolyte in batteries with a sodium anode: A combined x-ray tomography and model-based study Energy Technology 7 1801146 52

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