LEADER 01128nam a22002531i 4500 001 991002700969707536 005 20030825092101.0 008 030925s1992 yu |||||||||||||||||slv 035 $ab12326483-39ule_inst 035 $aARCHE-037402$9ExL 040 $aBiblioteca Interfacoltà$bita$cA.t.i. Arché s.c.r.l. Pandora Sicilia s.r.l. 082 04$a891.8209 100 1 $aOresnik, Janez$0158058 245 10$aUdelezenske vloge v slovenscini =$bSemantic roles in Slovene /$cJanez Oresnik 260 $aLjubljana :$bSlovenska akademija znanosti in umetnosti,$c1992 300 $a237 p. ;$c24 cm 440 0$aSlovenska akademija znanosti in umetnosti = Academia scientiarum et artium slovenica.$pRazred za filoloske in literarne vede = Classis 2 Philologia et litterae ;$v37 650 4$aLingua slovena 907 $a.b12326483$b02-04-14$c08-10-03 912 $a991002700969707536 945 $aLE002 D Ann. 276/037$g1$i2002000193926$lle002$o-$pE0.00$q-$rl$s- $t0$u0$v0$w0$x0$y.i1272581x$z08-10-03 996 $aUdelezenske vloge v slovenscini$9161123 997 $aUNISALENTO 998 $ale002$b08-10-03$cm$da $e-$fslv$gyu $h0$i1 LEADER 05137nam 2200577Ia 450 001 9910139040203321 005 20230803020951.0 010 $a1-5231-1086-4 010 $a1-118-61551-4 010 $a1-118-61539-5 010 $a1-118-61541-7 035 $a(CKB)2550000001094866 035 $a(EBL)1221163 035 $a(OCoLC)852757359 035 $a(MiAaPQ)EBC1221163 035 $a(Au-PeEL)EBL1221163 035 $a(CaPaEBR)ebr10726748 035 $a(CaONFJC)MIL501776 035 $a(EXLCZ)992550000001094866 100 $a20130206d2013 uy 0 101 0 $aeng 135 $aurcn||||||||| 200 00$aLithium batteries$b[electronic resource] $eadvanced technologies and applications /$fedited by Bruno Scrosati ... [et al.] 210 $aHoboken, NJ $cJohn Wiley & Sons, Inc.$dc2013 215 $a1 online resource (xi, 374 pages) 225 1 $aThe ECS Series of Texts and Monographs ;$vv. 58 300 $aDescription based upon print version of record. 311 $a1-118-18365-7 311 $a1-299-70525-1 320 $aIncludes bibliographical references and index. 327 $aLITHIUM BATTERIES; CONTENTS; CONTRIBUTORS; PREFACE; CHAPTER 1 ELECTROCHEMICAL CELLS: BASICS; 1 ELECTROCHEMICAL CELLS AND ION TRANSPORT; 2 CHEMICAL AND ELECTROCHEMICAL POTENTIAL; 2.1 Temperature Dependence of the Reversible Cell Voltage; 2.2 Chemical Potential; 2.3 Electrochemical Potential; 2.4 The Nernst Equation; 2.5 Electrochemical Double Layer; 3 OHMIC LOSSES AND ELECTRODE KINETICS; 3.1 Ohmic Potential Losses; 3.2 Kinetic Overpotential; 3.3 The Butler-Volmer Equation; 4 CONCLUDING REMARKS; BIBLIOGRAPHY; CHAPTER 2 LITHIUM BATTERIES: FROM EARLY STAGES TO THE FUTURE; 1 INTRODUCTION 327 $a2 ADVENT OF THE RECHARGEABLE LITHIUM BATTERY 3 A LOOK INTO THE FUTURE; 4 BEYOND THE HORIZON; REFERENCES; CHAPTER 3 ADDITIVES IN ORGANIC ELECTROLYTES FOR LITHIUM BATTERIES; 1 INTRODUCTION; 1.1 Shortcomings of Standard Liquid or Gel Electrolytes; 1.2 The Advent of Additives; 1.3 Additive Criteria and Development Process; 2 LiPF6 SALT STABILIZERS; 2.1 Hindering and Deactivating PF5; 2.2 Impurity Scavenging; 2.3 Anion Receptors; 3 OVERCHARGE PROTECTORS; 3.1 Redox Shuttles; 3.2 Shutdown Additives; 4 FLAME RETARDANTS; 4.1 Classical Phosphates; 4.2 Cyclic Phosphazenes; 4.3 Ionic Liquids as Additives 327 $a5 SYNERGY EFFECTS BETWEEN ELECTROLYTE ADDITIVES 5.1 Double-Functionality Additives; 5.2 Synergies of Single-Functionality Additives; 6 CONCLUSIONS; REFERENCES; CHAPTER 4 ELECTROLYTES FOR LITHIUM-ION BATTERIES WITH HIGH-VOLTAGE CATHODES; 1 INTRODUCTION; 2 OXIDATION REACTIONS OF THE ELECTROLYTE WITH TRADITIONAL METAL OXIDE CATHODE MATERIALS; 3 THERMAL REACTIONS OF THE ELECTROLYTE WITH THE SURFACE OF METAL OXIDE CATHODES; 4 FORMULATION OF ELECTROLYTES FOR HIGH-VOLTAGE MATERIALS; 4.1 Chemistry of Cathodes at High Voltage 327 $a4.2 Novel Organic Solvents with Greater Oxidative Stability: Sulfones, Nitriles, and Fluorinated Solvents 4.3 Novel Additives for Cathode Surface Passivation; 5 SUMMARY; REFERENCES; CHAPTER 5 CORE-SHELL STRUCTURE CATHODE MATERIALS FOR RECHARGEABLE LITHIUM BATTERIES; 1 INTRODUCTION; 2 LAYER-STRUCTURED CORE-SHELL; 3 LAYER-STRUCTURED CORE-SHELL PARTICLES WITH A CONCENTRATION GRADIENT; 4 SPHERICAL CORE-SHELL Li[(Li0.05Mn0.95)0.8(Ni0.25Mn0.75)0.2]2O4 SPINEL; 5 CONCLUSIONS; Acknowledgments; REFERENCES; CHAPTER 6 PROBLEMS AND EXPECTANCY IN LITHIUM BATTERY TECHNOLOGIES; 1 INTRODUCTION 327 $a2 IMPORTANCE OF ENERGY STORAGE 3 DEVELOPMENT OF LITHIUM BATTERIES; 3.1 Lithium Batteries for Electric Vehicles; 3.2 Lithium Batteries for Mobile Applications; 4 DEVELOPMENT OF MATERIALS FOR RECHARGEABLE LITHIUM BATTERIES; 4.1 Safety; 4.2 Lifetime; 4.3 High Energy Density; 4.4 Cathode Materials; 4.5 Anode Materials; 4.6 Electrolytes; 5 PRODUCTION OF ELECTRODES FOR LITHIUM BATTERIES; 5.1 Energy and Power Density; 5.2 Particle Nature; 5.3 Composite Electrodes; 5.4 Current Collectors; 6 SUMMARY; REFERENCES; CHAPTER 7 FLUORINE-BASED POLYANIONIC COMPOUNDS FOR HIGH-VOLTAGE ELECTRODE MATERIALS 327 $a1 INTRODUCTION 330 $aExplains the current state of the science and points the way to technological advances First developed in the late 1980's, lithium-ion batteries now power everything from tablet computers to power tools to electric cars. Despite tremendous progress in the last two decades in the engineering and manufacturing of lithium-ion batteries, they are currently unable to meet the energy and power demands of many new and emerging devices. This book sets the stage for the development of a new generation of higher-energy density, rechargeable lithium-ion batteries by advancing battery chemical 410 0$aElectrochemical Society series 606 $aLithium cells 606 $aElectric batteries 615 0$aLithium cells. 615 0$aElectric batteries. 676 $a621.31/2424 701 $aScrosati$b Bruno$0748874 801 0$bMiAaPQ 801 1$bMiAaPQ 801 2$bMiAaPQ 906 $aBOOK 912 $a9910139040203321 996 $aLithium batteries$92188826 997 $aUNINA