On the Mechanism of Nonaqueous Li-O2 Electrochemistry on C and Its Kinetic Overpotentials: Some Implications for Li-Air Batteries
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McCloskey, Bryan. D.
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IBM Res Corp, Almaden Res Ctr, San Jose, CA 95120 USAIBM Res Corp, Almaden Res Ctr, San Jose, CA 95120 USA
McCloskey, Bryan. D.
[1
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Scheffler, Rouven
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Volkswagen Grp Inc, Belmont, CA 94002 USAIBM Res Corp, Almaden Res Ctr, San Jose, CA 95120 USA
Scheffler, Rouven
[2
]
Speidel, Angela
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Volkswagen Grp Inc, Belmont, CA 94002 USAIBM Res Corp, Almaden Res Ctr, San Jose, CA 95120 USA
Speidel, Angela
[2
]
Girishkumar, Girish
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IBM Res Corp, Almaden Res Ctr, San Jose, CA 95120 USAIBM Res Corp, Almaden Res Ctr, San Jose, CA 95120 USA
Girishkumar, Girish
[1
]
Luntz, Alan C.
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IBM Res Corp, Almaden Res Ctr, San Jose, CA 95120 USA
SLAC Natl Accelerator Lab, SUNCAT, Menlo Pk, CA 94025 USAIBM Res Corp, Almaden Res Ctr, San Jose, CA 95120 USA
Luntz, Alan C.
[1
,3
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机构:
[1] IBM Res Corp, Almaden Res Ctr, San Jose, CA 95120 USA
[2] Volkswagen Grp Inc, Belmont, CA 94002 USA
[3] SLAC Natl Accelerator Lab, SUNCAT, Menlo Pk, CA 94025 USA
Quantitative differential electrochemical mass spectrometry and cyclic voltammetry have been combined to probe possible mechanisms and the kinetic overpotentials, responsible for discharge and charge in a Li-O-2 battery, using C as the cathode and an electrolyte based on dimethoxyethane as the solvent. Previous spectroscopy experiments (X-ray 6 diffraction, mu Raman, IR, XPS) have shown that Li2O2 is the principle product formed during Li-O-2 discharge using this electrolyte/cathode combination. At all discharge potentials and charge potentials <4.0 V, the observed electrochemistry is similar to 2e(-)/O-2 consumed or produced, also implying that Li2O2 is the dominant thermodynamically stable species formed and consumed in the electrochemistry. No evidence exists at any potential for formation of stable LiO2 (1e(-)/O-2) or Li2O (4e(-)/O-2) during discharge. At charging potentials >4.0 V, the electrochemistry requires significantly more than 2e(-)/O-2, and we take this as evidence for electrolyte decomposition. We find that sequential concerted (Li+ + e(-)) ion transfers to/from adsorbed O-2* and LiO2* to produce/consume Li2O2 is the mechanism that is most compatible with these experiments. The kinetic overpotentials are extremely low relative to aqueous O-2 reduction and evolution, and this implies that in principle a discharge-charge Li-O-2 cycle is possible with high voltaic efficiency (similar to 85%) if electrolyte and cathode stability issues are resolved.