000 03708nam a22005175i 4500
001 978-0-387-34445-4
003 DE-He213
005 20250710083953.0
007 cr nn 008mamaa
008 100716s2009 xxu| s |||| 0|eng d
020 _a9780387344454
_a99780387344454
024 7 _a10.1007/978-0-387-34445-4
_2doi
082 0 4 _a541.37
_223
100 1 _aYoshio, Masaki.
_eeditor.
245 1 0 _aLithium-Ion Batteries
_h[recurso electrónico] :
_bScience and Technologies /
_cedited by Masaki Yoshio, Ralph J. Brodd, Akiya Kozawa.
264 1 _aNew York, NY :
_bSpringer New York,
_c2009.
300 _aXXVI, 452 p.
_bonline resource.
336 _atext
_btxt
_2rdacontent
337 _acomputer
_bc
_2rdamedia
338 _arecurso en línea
_bcr
_2rdacarrier
347 _atext file
_bPDF
_2rda
505 0 _aSynopsis of the Lithium-Ion Battery Markets -- A Review of Positive Electrode Materials for Lithium-Ion Batteries -- Carbon Anode Materials -- Role-Assigned Electrolytes: Additives -- Carbon-Conductive Additives for Lithium-Ion Batteries -- Applications of Polyvinylidene Fluoride-related materials for Lithium-Ion Batteries -- SBR Binder (for Negative Electrode) and ACM Binder (for Positive Electrode) -- Production Processes for Fabrication of Lithium-Ion Batteries -- Polyanionic Cathode-Active Materials -- Overcharge Behavior of Metal Oxide-Coated Cathode Materials -- Development of Metal Alloy Anodes -- HEV Application -- Flame-Retardant Additives for Lithium-Ion Batteries -- High-Energy Capacitor Based on Graphite Cathode and Activated Carbon Anode -- Development of LiCoO 2 Used for Rechargeable Lithium-Ion Battery -- Cathode Materials: LiNiO2 and Related Compounds -- Manganese-Containing Cathode-Active Materials for Lithium-Ion Batteries -- Trends in Carbon Material as an Anode in Lithium-Ion Battery -- Functional Electrolytes Specially Designed for Lithium-Ion Batteries -- Lithium-Ion Battery Separators1 -- Polymer Electrolyte and Polymer Battery -- A Novel Hard-Carbon Optimized to Large-Size Lithium-Ion Secondary Batteries -- LiMn2O4 as a Large-Capacity Positive Material for Lithium-Ion Batteries.
520 _aIn developing electrochemical cells, one must keep in mind that the real goal is to package and control all the materials and components (cathode and anode active materials, electrolytes, separators, current collectors etc.) in a limited volume to enable maximum energy storage without creating any safety problems. In this manner, Li-Ion batteries (LIB) were first introduced to practical use in 1991. This book contains an in-depth review of electrode materials, electrolytes and additives for LIB, as well as indicators of the future directions for continued maturation of the LIB.
650 0 _aCHEMISTRY.
650 0 _aCHEMISTRY, INORGANIC.
650 0 _aCHEMISTRY, PHYSICAL ORGANIC.
650 0 _aCHEMICAL ENGINEERING.
650 0 _aPRODUCTION OF ELECTRIC ENERGY OR POWER.
650 0 _aELECTRIC ENGINEERING.
650 1 4 _aCHEMISTRY.
650 2 4 _aELECTROCHEMISTRY.
650 2 4 _aINDUSTRIAL CHEMISTRY/CHEMICAL ENGINEERING.
650 2 4 _aPOWER ELECTRONICS, ELECTRICAL MACHINES AND NETWORKS.
650 2 4 _aPHYSICAL CHEMISTRY.
650 2 4 _aENERGY TECHNOLOGY.
650 2 4 _aINORGANIC CHEMISTRY.
700 1 _aBrodd, Ralph J.
_eeditor.
700 1 _aKozawa, Akiya.
_eeditor.
710 2 _aSpringerLink (Online service)
773 0 _tSpringer eBooks
776 0 8 _iPrinted edition:
_z9780387344447
856 4 0 _uhttp://dx.doi.org/10.1007/978-0-387-34445-4
_zVer el texto completo en las instalaciones del CICY
912 _aZDB-2-CMS
942 _2ddc
_cER
999 _c57367
_d57367