Page 75 - Read Online
P. 75

Page 26 of 30       Mazzapioda et al. Energy Mater 2023;3:300019  https://dx.doi.org/10.20517/energymater.2023.03

               12.       Fergus JW. Ceramic and polymeric solid electrolytes for lithium-ion batteries. J Power Sources 2010;195:4554-69.  DOI
               13.       Sashmitha K, Rani MU. A comprehensive review of polymer electrolyte for lithium-ion battery. Polym Bull 2023;80:89-135.  DOI
                                                                                       +
               14.       Mindemark J, Lacey MJ, Bowden T, Brandell D. Beyond PEO - alternative host materials for Li -conducting solid polymer
                    electrolytes. Prog Polym Sci 2018;81:114-43.  DOI
               15.       Alexander GV, Patra S, Sobhan Raj SV, Sugumar MK, Ud Din MM, Murugan R. Electrodes-electrolyte interfacial engineering for
                                                                            +
                    realizing room temperature lithium metal battery based on garnet structured solid fast Li  conductors. J Power Sources 2018;396:764-
                    73.  DOI
               16.       Chen R, Nolan AM, Lu J, et al. The thermal stability of lithium solid electrolytes with metallic lithium. Joule 2020;4:812-21.  DOI
               17.       Schwietert TK, Vasileiadis A, Wagemaker M. First-principles prediction of the electrochemical stability and reaction mechanisms of
                    solid-state electrolytes. JACS Au 2021;1:1488-96.  DOI  PubMed  PMC
               18.       Manthiram A, Yu X, Wang S. Lithium battery chemistries enabled by solid-state electrolytes. Nat Rev Mater 2017;2:16103.  DOI
               19.       Wei R, Chen S, Gao T, Liu W. Challenges, fabrications and horizons of oxide solid electrolytes for solid-state lithium batteries. Nano
                    Select 2021;2:2256-74.  DOI
               20.       Zhao Q, Stalin S, Zhao C, Archer LA. Designing solid-state electrolytes for safe, energy-dense batteries. Nat Rev Mater 2020;5:229-
                    52.  DOI
               21.       Gurung A, Pokharel J, Baniya A, et al. A review on strategies addressing interface incompatibilities in inorganic all-solid-state
                    lithium batteries. Sustain Energy Fuels 2019;3:3279-309.  DOI
               22.       Fan L, Wei S, Li S, Li Q, Lu Y. Recent progress of the solid-state electrolytes for high-energy metal-based batteries. Adv Energy
                    Mater 2018;8:1702657.  DOI
               23.       Lu J, Li Y. Perovskite-type Li-ion solid electrolytes: a review. J Mater Sci Mater Electron 2021;32:9736-54.  DOI
                                                                                              +          +
               24.       Ramakumar S, Deviannapoorani C, Dhivya L, Shankar LS, Murugan R. Lithium garnets: synthesis, structure, Li  conductivity, Li
                    dynamics and applications. Prog Mater Sci 2017;88:325-411.  DOI
               25.       Wang P, Qu W, Song W, Chen H, Chen R, Fang D. Electro-Chemo-Mechanical issues at the interfaces in solid-state lithium metal
                    batteries. Adv Funct Mater 2019;29:1900950-79.  DOI
               26.       Lim H, Park J, Shin H, et al. A review of challenges and issues concerning interfaces for all-solid-state batteries. Energy Stor Mater
                    2020;25:224-50.  DOI
               27.       Tsurumaki A, Ohno H. Dissolution of oligo(tetrafluoroethylene) and preparation of poly(tetrafluoroethylene)-based composites by
                    using fluorinated ionic liquids. Chem Commun 2018;54:409-12.  DOI  PubMed
               28.       Kalhoff J, Kim G, Passerini S, Appetecchi GB. Safety assessment of ionic liquid-based lithium-ion battery prototypes. J Energy
                    Power Eng 2016;04:9-18.  DOI
               29.       Shin J. Ionic liquids to the rescue? overcoming the ionic conductivity limitations of polymer electrolytes. Electrochem Commun
                    2003;5:1016-20.  DOI
               30.       Tian L, Wang M, Liu Y, et al. Multiple ionic conduction highways and good interfacial stability of ionic liquid-encapsulated cross-
                    linked polymer electrolytes for lithium metal batteries. J Power Sources 2022;543:231848.  DOI
               31.       Eshetu G, Armand M, Scrosati B, Passerini S. Energy storage materials synthesized from ionic liquids. Angew Chem Int Ed
                    2014;53:13342-59.  DOI  PubMed
               32.       Osada I, de Vries H, Scrosati B, Passerini S. Ionic-liquid-based polymer electrolytes for battery applications. Angew Chem Int Ed
                    2016;55:500-13.  DOI  PubMed
               33.       Ito S, Unemoto A, Ogawa H, Tomai T, Honma I. Application of quasi-solid-state silica nanoparticles-ionic liquid composite
                    electrolytes to all-solid-state lithium secondary battery. J Power Sources 2012;208:271-5.  DOI
                                                                               +
               34.       Wen Z, Li Y, Zhao Z, et al. A leaf-like Al O -based quasi-solid electrolyte with a fast Li  conductive interface for stable lithium
                                                  3
                                                2
                    metal anodes. J Mater Chem A 2020;8:7280-7.  DOI
               35.       Liu  S,  Liu  W,  Ba  D,  et  al.  Filler-integrated  composite  polymer  electrolyte  for  solid-state  lithium  batteries.  Adv  Mater
                    2023;35:e2110423.  DOI
               36.       Huy VP, So S, Hur J. Inorganic fillers in composite gel polymer electrolytes for high-performance lithium and non-lithium polymer
                    batteries. Nanomaterials 2021;11:614.  DOI  PubMed  PMC
               37.       Chen R, Li Q, Yu X, Chen L, Li H. Approaching practically accessible solid-state batteries: stability issues related to solid
                    electrolytes and interfaces. Chem Rev 2020;120:6820-77.  DOI
               38.       Haven Y. The ionic conductivity of Li-halide crystals. Recl Trav Chim Pays-Bas 1950;69:1471-89.  DOI
               39.       Alpen U. Li3N: a promising Li ionic conductor. J Solid State Chem 1979;29:379-92.  DOI
               40.       Lapp T. Ionic conductivity of pure and doped Li3N. Solid State Ion 1983;11:97-103.  DOI
               41.       Wang C, Fu K, Kammampata SP, et al. Garnet-type solid-state electrolytes: materials, interfaces, and batteries. Chem Rev
                    2020;120:4257-300.  DOI
                                                +
               42.       Goodenough J, Hong H, Kafalas J. Fast Na -ion transport in skeleton structures. Mater Res Bull 1976;11:203-20.  DOI
               43.       Wells AF. Structural inorganic chemistry, 4th ed. Oxford: Clarendon Press; 1975.
               44.       Thangadurai V, Weppner W. Li ALa Ta O  (A = Ca, Sr, Ba): A new class of fast lithium ion conductors with garnet-like structure. J
                                        6   2  2  12
                    Am Ceram Soc 2005;88:411-8.  DOI
               45.       Thangadurai V, Weppner W. Li ALa Ta O  (A = Sr, Ba): novel Garnet-like oxides for fast lithium ion conduction. Adv Funct Mater
                                         6  2  2  12
                    2005;15:107-12.  DOI
   70   71   72   73   74   75   76   77   78   79   80