Liu Lab
Biomimetic Nanostructuring of Copper Thin Films Enhances Adhesion to the Negative Electrode Laminate in Lithium-Ion Batteries." ChemSusChem 7 (2014) 2853–2858.
, , , , , and . "Network Single Ion Conductors Based on Comb-Branched Polyepoxide Ethers and Lithium Bis(allylmalonato)borate." Macromolecules 37.14 (2004) 5133–5135.
, , , , and . "In Situ Formed Si Nanoparticle Network with Micron-Sized Si Particles for Lithium-Ion Battery Anodes." Nano Letters 13 (2013) 5397–5402.
, , , , , and . "Hydrogenated surface disorder enhances lithium ion battery performance." Nano Energy 2.5 (2013) 826–835.
, , , , , and . "Electrochemically Induced High Capacity Displacement Reaction of PEO/MoS2/Graphene Nanocomposites with Lithium." Advanced Functional Materials 21 (2011) 2840–2846.
, , , , , , , and . "The Effects of Native Oxide Surface Layer on the Electrochemical Performance of Si Nanoparticle-Based Electrodes." Journal of The Electrochemical Society 158 (2011) A1260-A1266.
, , , , , , and . "A Systematic Investigation of Polymer Binder Flexibility on the Electrode Performance of Lithium-Ion Batteries." ACS Applied Materials & Interfaces 6 (2014) 17111–17118.
, , , , , , , , and . "Toward practical application of functional conductive polymer binder for a high-energy lithium-ion battery design." Nano Letters 14 (2014) 6704–6710.
, , , , , , , , , , , , , , and . "Hierarchical electrode design of high-capacity alloy nanomaterials for lithium-ion batteries." Nano Today 10 (2015) 193–212.
, , and . "Synthesis, structure, and ionic conductivity of self-assembled amphiphilic poly(methacrylate) comb polymers." Macromolecules 39 (2006) 4726–4734.
, , , and . "Nanoscale lithium ion conducting polyethylene oxide with self-attached insulating layers." Solid State Ionics 175 (2004) 721–724.
, , and . "Sb-Cu-Li electrochromic mirrors." Solar Energy Materials and Solar Cells 86 (2005) 113–121.
, and . "Rational Design and Facial Synthesis of Li3V2(PO4)3@C Nanocomposites Using Carbon with Different Dimensions for Ultrahigh-Rate Lithium-Ion Batteries." ACS Applied Materials & Interfaces 7 (2015) 12057–12066.
, , , , , , , , , , and . "Fabrication and in vitro characterization of three-dimensional organic/inorganic scaffolds by robocasting." Journal of Biomedical Materials Research Part A 83A (2007) 434–445.
, , , , , , and . "A Catalytic Path for Electrolyte Reduction in Lithium-Ion Cells Revealed by in Situ Attenuated Total Reflection-Fourier Transform Infrared Spectroscopy." Journal of the American Chemical Society 137 (2015) 3181–3184.
, , , , , and . "Synthesis of copper sulfide nanowire bundles in a mixed solvent as a cathode material for lithium-ion batteries." Journal of Power Sources 269 (2014) 550–555.
, , , , , , and . "Mesoscale Origin of the Enhanced Cycling-Stability of the Si-Conductive Polymer Anode for Li-ion Batteries." Scientific Reports 4 (2014).
, , , , , , , , and . "Towards room-temperature performance for lithium-polymer batteries." Electrochimica Acta 48 (2003) 2305–2309.
, , , and . "FIB Sample Preparation of Polymer Thin Films on Hard Substrates Using the Shadow-FIB method." Microscopy Today 17 (2009) 20–23.
, , and . "Minimization of focused ion beam damage in nanostructured polymer thin films." Ultramicroscopy 111.3 (2011) 191–199.
, , , , and . "