High temperature lithium/sulfide batteries
Bipolar LiAl/FeS and LiAl/FeS 2 batteries are being developed for electric vehicle (EV) applications by Argonne National Laboratory. Current technology employs a two-phase Li alloy negative electrode, low melting point LiCl—rich LiClLiBrKBr molten salt electrolyte, and either an FeS or an upper-...
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Veröffentlicht in: | Electrochimica acta 1993, Vol.38 (9), p.1269-1287 |
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Sprache: | eng |
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Zusammenfassung: | Bipolar LiAl/FeS and LiAl/FeS
2 batteries are being developed for electric vehicle (EV) applications by Argonne National Laboratory. Current technology employs a two-phase Li alloy negative electrode, low melting point LiCl—rich LiClLiBrKBr molten salt electrolyte, and either an FeS or an upper-plateau (UP) FeS
2 positive electrode. These components are assembled in an “electrolyte-starved” bipolar cell configuration. Use of the two-phase Li alloy (α + β LiAl and Li
5Al
5Fe
2) negative electrode provides
in situ overcharge tolerance that renders the bipolar design viable. Employing LiCl rich LiClLiBrKBr electrolyte in “electrolyte-starved” cells achieves low-burdened cells that possess low area-specific impedance; comparable to that of flooded cells using LiClLiBrKBr eutectic electrolyte. The combination of dense U.P. FeS
2 electrodes and low-melting electrolyte produces a stable and reversible couple, achieving over 1000 cycles in flooded cells, with high power capabilities. In addition, a family of stable chalcogenide ceramic/sealant materials was developed that produce high-strength bonds between a variety of metals and ceramics, which renders lithium/iron sulfide bipolar stacks practical. Bipolar LiAl/FeS and LiAl/FeS
2 cells and four-cell stacks using these seals are being built and tested in the 13 cm diameter size for EV applications. To date, LiAl/FeS cells have achieved 240 W kg
−1 power at 80% depth of discharge (DOD) and 130 Wh kg
−1 energy at the 25 W kg
−1 rate. LiAl/FeS
2 cells have attained 400 W kg
−1 power at 80% DOD and 180 Wh kg
−1 energy at the 30 W kg
−1 rate. When cell performance characteristics are used to model full-scale EV and hybrid vehicle (HV) batteries, they are projected to meet or exceed the performance requirements for a large variety of EV and HV applications. |
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ISSN: | 0013-4686 1873-3859 |
DOI: | 10.1016/0013-4686(93)80057-7 |