Polymer–inorganic solid–electrolyte interphase for stable lithium metal batteries under lean electrolyte conditions
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Donghai Wang | Thomas E. Mallouk | Zhifei Yan | Xin He | Tianhang Chen | T. Mallouk | Donghai Wang | Seong H. Kim | Qingquan Huang | Yue Gao | Daiwei Wang | Zhifei Yan | J. Gray | Xin He | Tianhang Chen | Yuguang C. Li | Haiying Wang | Jennifer L. Gray | Yue Gao | Daiwei Wang | Qingquan Huang | Haiying Wang | Donghai Wang
[1] A. Ludwig,et al. Wet Nanoindentation of the Solid Electrolyte Interphase on Thin Film Si Electrodes. , 2015, ACS applied materials & interfaces.
[2] Jae-Hun Kim,et al. Metallic anodes for next generation secondary batteries. , 2013, Chemical Society reviews.
[3] O. Borodin,et al. High rate and stable cycling of lithium metal anode , 2015, Nature Communications.
[4] A. Bhatt,et al. Stabilizing lithium metal using ionic liquids for long-lived batteries , 2016, Nature Communications.
[5] Long-Qing Chen,et al. Stable metal battery anodes enabled by polyethylenimine sponge hosts by way of electrokinetic effects , 2018, Nature Energy.
[6] D. Holdstock. Past, present--and future? , 2005, Medicine, conflict, and survival.
[7] K. Amine,et al. Non-flammable electrolyte enables Li-metal batteries with aggressive cathode chemistries , 2018, Nature Nanotechnology.
[8] Shuru Chen,et al. Functional Organosulfide Electrolyte Promotes an Alternate Reaction Pathway to Achieve High Performance in Lithium-Sulfur Batteries. , 2016, Angewandte Chemie.
[9] Doron Aurbach,et al. A short review of failure mechanisms of lithium metal and lithiated graphite anodes in liquid electrolyte solutions , 2002 .
[10] Yi Cui,et al. Reviving the lithium metal anode for high-energy batteries. , 2017, Nature nanotechnology.
[11] Yu-Guo Guo,et al. An Artificial Solid Electrolyte Interphase Layer for Stable Lithium Metal Anodes , 2016, Advanced materials.
[12] N. Dudney. Addition of a thin-film inorganic solid electrolyte (Lipon) as a protective film in lithium batteries with a liquid electrolyte , 2000 .
[13] Ji‐Guang Zhang,et al. New Insights on the Structure of Electrochemically Deposited Lithium Metal and Its Solid Electrolyte Interphases via Cryogenic TEM. , 2017, Nano letters.
[14] E. Peled,et al. Review—SEI: Past, Present and Future , 2017 .
[15] K. Wahl,et al. A comparison of JKR-based methods to analyze quasi-static and dynamic indentation force curves. , 2006, Journal of colloid and interface science.
[16] L. Nazar,et al. A facile surface chemistry route to a stabilized lithium metal anode , 2017, Nature Energy.
[17] Rui Zhang,et al. Toward Safe Lithium Metal Anode in Rechargeable Batteries: A Review. , 2017, Chemical reviews.
[18] Kevin N. Wood,et al. Improved Cycle Life and Stability of Lithium Metal Anodes through Ultrathin Atomic Layer Deposition Surface Treatments , 2015 .
[19] Zhengyuan Tu,et al. Ionic-liquid-nanoparticle hybrid electrolytes: applications in lithium metal batteries. , 2014, Angewandte Chemie.
[20] R. Carpick,et al. A General Equation for Fitting Contact Area and Friction vs Load Measurements. , 1999, Journal of colloid and interface science.
[21] Ya‐Xia Yin,et al. Stable Li Plating/Stripping Electrochemistry Realized by a Hybrid Li Reservoir in Spherical Carbon Granules with 3D Conducting Skeletons. , 2017, Journal of the American Chemical Society.
[22] Fernando A. Soto,et al. Synergistic Effect of Graphene Oxide for Impeding the Dendritic Plating of Li , 2018 .
[23] Ji‐Guang Zhang,et al. Lithium metal anodes for rechargeable batteries , 2014 .
[24] Michel Armand,et al. A new class of Solvent-in-Salt electrolyte for high-energy rechargeable metallic lithium batteries , 2013, Nature Communications.
[25] Doron Aurbach,et al. Fluoroethylene Carbonate as an Important Component for the Formation of an Effective Solid Electrolyte Interphase on Anodes and Cathodes for Advanced Li-Ion Batteries , 2017 .
[26] D. Aurbach. Review of selected electrode–solution interactions which determine the performance of Li and Li ion batteries , 2000 .
[27] Zhenan Bao,et al. Lithium Metal Anodes with an Adaptive "Solid-Liquid" Interfacial Protective Layer. , 2017, Journal of the American Chemical Society.
[28] S. Choudhury,et al. Designing Artificial Solid-Electrolyte Interphases for Single-Ion and High-Efficiency Transport in Batteries , 2017 .
[29] Lynden A. Archer,et al. Design principles for electrolytes and interfaces for stable lithium-metal batteries , 2016, Nature Energy.
[30] Heng Zhang,et al. Electrolyte Additives for Lithium Metal Anodes and Rechargeable Lithium Metal Batteries: Progress and Perspectives. , 2018, Angewandte Chemie.
[31] N. Kotov,et al. A dendrite-suppressing composite ion conductor from aramid nanofibres , 2015, Nature Communications.
[32] T. Mallouk,et al. Interfacial Chemistry Regulation via a Skin-Grafting Strategy Enables High-Performance Lithium-Metal Batteries. , 2017, Journal of the American Chemical Society.
[33] Selena M. Russell,et al. Dendrite-free lithium deposition with self-aligned nanorod structure. , 2014, Nano letters.
[34] P. J. Ollivier,et al. Layer-by-Layer Assembly of Ultrathin Composite Films from Micron-Sized Graphite Oxide Sheets and Polycations , 1999 .
[35] R. C. Macridis. A review , 1963 .
[36] Hyun-Wook Lee,et al. Selective deposition and stable encapsulation of lithium through heterogeneous seeded growth , 2016, Nature Energy.
[37] E. P. Lewis. In perspective. , 1972, Nursing outlook.
[38] Ilke Arslan,et al. Direct visualization of initial SEI morphology and growth kinetics during lithium deposition by in situ electrochemical transmission electron microscopy. , 2014, Chemical communications.
[39] Shuru Chen,et al. Organosulfide-plasticized solid-electrolyte interphase layer enables stable lithium metal anodes for long-cycle lithium-sulfur batteries , 2017, Nature Communications.
[40] Yang‐Kook Sun,et al. Cycling characteristics of lithium metal batteries assembled with a surface modified lithium electrode , 2013 .
[41] Lynden A. Archer,et al. Cryo-STEM mapping of solid–liquid interfaces and dendrites in lithium-metal batteries , 2018, Nature.
[42] M. Troyon,et al. General Equations Describing Elastic Indentation Depth and Normal Contact Stiffness versus Load. , 2000, Journal of colloid and interface science.
[43] Xin-Bing Cheng,et al. Nanodiamonds suppress the growth of lithium dendrites , 2017, Nature Communications.
[44] T. Mallouk,et al. Salt-Based Organic-Inorganic Nanocomposites: Towards A Stable Lithium Metal/Li10 GeP2 S12 Solid Electrolyte Interface. , 2018, Angewandte Chemie.
[45] M. Armand,et al. Issues and challenges facing rechargeable lithium batteries , 2001, Nature.
[46] John E. Sader,et al. Frequency response of cantilever beams immersed in viscous fluids near a solid surface with applications to the atomic force microscope , 2005 .
[47] Jianming Zheng,et al. Electrolyte additive enabled fast charging and stable cycling lithium metal batteries , 2017, Nature Energy.
[48] Yayuan Liu,et al. Layered reduced graphene oxide with nanoscale interlayer gaps as a stable host for lithium metal anodes. , 2016, Nature nanotechnology.
[49] Jun Liu,et al. Dendrite-free lithium deposition via self-healing electrostatic shield mechanism. , 2013, Journal of the American Chemical Society.
[50] R. Lakes,et al. Poisson's ratio and modern materials , 2011, Nature Materials.
[51] Allen Pei,et al. Surface Fluorination of Reactive Battery Anode Materials for Enhanced Stability. , 2017, Journal of the American Chemical Society.
[52] Lynden A Archer,et al. Stable lithium electrodeposition in liquid and nanoporous solid electrolytes. , 2014, Nature materials.
[53] John B Goodenough,et al. The Li-ion rechargeable battery: a perspective. , 2013, Journal of the American Chemical Society.
[54] Yi Yu,et al. Atomic structure of sensitive battery materials and interfaces revealed by cryo–electron microscopy , 2017, Science.
[55] Yang-Kook Sun,et al. Challenges facing lithium batteries and electrical double-layer capacitors. , 2012, Angewandte Chemie.