Title :
The effect of high temperature exposure upon the performance of lithium ion cells
Author :
Smart, M.C. ; Ratnakumar, B.V. ; Whitacre, J. ; Whitcanack, L. ; Chin, K. ; Rodriguez, M. ; Surampudi, S.
Author_Institution :
Jet Propulsion Lab., California Inst. of Technol., Pasadena, CA, USA
Abstract :
The effect of electrolyte type upon the resilience of lithium-ion cells to high temperature storage has been investigated in experimental MCMB carbon-LixNiyCo1-yO2 three-electrode cells. A number of electrolytes have been studied where the solvent mixtures have been varied, with the intention of determining the impact of ethylene carbonate (EC)-content upon performance, as well as, the presence of nonconventional linear carbonates (ie., di-2,2,2-trifluoroethyl carbonate and dipropyl carbonate). In addition to determining the reversible and irreversible capacity losses sustained as a result of high temperature storage (55° to 70°C), a number of electrochemical measurements (AC impedance, Tafel polarization and linear polarization) have been performed to determine the impact of the high temperature exposure upon the electrode kinetics and the nature of the electrode surface films. It was observed that cells containing electrolytes with high EC-content (>50% EC by volume) displayed superior resilience to high temperature storage, in contrast to cells containing low EC-content electrolytes (<25% EC by volume) which displayed much larger irreversible capacity losses and poorer lithium intercalation/deintercalation kinetics after exposure to high temperatures
Keywords :
electric impedance measurement; electrochemical electrodes; electrolytes; intercalation compounds; lithium; losses; polarisation; reaction kinetics; secondary cells; 55 to 70 C; AC impedance measurement; Li; Li-ion cells; LixNiyCo1-yO2; MCMB carbon-LixNiyCo1-yO2 three-electrode cells; Tafel polarization measurement; di-2,2,2-trifluoroethyl carbonate; dipropyl carbonate; electrochemical measurements; electrode kinetics; electrode surface films; ethylene carbonate-content; high temperature exposure; high temperature storage; irreversible capacity losses; linear polarization measurement; lithium intercalation/deintercalation kinetics; lithium ion cells performance; nonconventional linear carbonates; reversible capacity losses; solvent mixtures; Electrodes; Impedance measurement; Kinetic theory; Loss measurement; Performance evaluation; Polarization; Resilience; Solvents; Surface impedance; Temperature;
Conference_Titel :
Battery Conference on Applications and Advances, 2002. The Seventeenth Annual
Conference_Location :
Long Beach, CA
Print_ISBN :
0-7803-7132-1
DOI :
10.1109/BCAA.2002.986368