Solid-state activation of Li 2 O 2 oxidation kinetics and implications for Li–O 2 batteries
As one of the most theoretically promising next-generation chemistries, Li–O 2 batteries are the subject of intense research to address their stability, cycling, and efficiency issues. The recharge kinetics of Li–O 2 are especially sluggish, prompting the use of metal nanoparticles as reaction promo...
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Published in | Energy & environmental science Vol. 8; no. 8; pp. 2417 - 2426 |
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Main Authors | , , , , , , , , , , , |
Format | Journal Article |
Language | English |
Published |
2015
|
Online Access | Get full text |
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Summary: | As one of the most theoretically promising next-generation chemistries, Li–O
2
batteries are the subject of intense research to address their stability, cycling, and efficiency issues. The recharge kinetics of Li–O
2
are especially sluggish, prompting the use of metal nanoparticles as reaction promoters. In this work, we probe the underlying pathway of kinetics enhancement by transition metal and oxide particles using a combination of electrochemistry, X-ray absorption spectroscopy, and thermochemical analysis in carbon-free and carbon-containing electrodes. We highlight the high activity of the group VI transition metals Mo and Cr, which are comparable to noble metal Ru and coincide with XAS measured changes in surface oxidation state matched to the formation of Li
2
MoO
4
and Li
2
CrO
4
. A strong correlation between conversion enthalpies of Li
2
O
2
with the promoter surface (Li
2
O
2
+ M
a
O
b
± O
2
→ Li
x
M
y
O
z
) and electrochemical activity is found that unifies the behaviour of solid-state promoters. In the absence of soluble species on charge and the decomposition of Li
2
O
2
proceeding through solid solution, enhancement of Li
2
O
2
oxidation is mediated by chemical conversion of Li
2
O
2
with slow oxidation kinetics to a lithium metal oxide. Our mechanistic findings provide new insights into the selection and/or employment of electrode chemistry in Li–O
2
batteries. |
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ISSN: | 1754-5692 1754-5706 |
DOI: | 10.1039/C5EE00967G |