Dissociating high concentration lithium salts in LLZTO-based high dielectric polymer electrolytes for low temperature Li metal batteries
Incorporating high concentrations of lithium salts into solid polymer electrolytes can enhance the electrochemical performance of Li metal batteries. However, this approach is often obstructed by the reduced mechanical properties and limited lithium salt dissociation capacity. To address these chall...
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Veröffentlicht in: | Materials chemistry frontiers 2024-10, Vol.8 (21), p.3569-3576 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Incorporating high concentrations of lithium salts into solid polymer electrolytes can enhance the electrochemical performance of Li metal batteries. However, this approach is often obstructed by the reduced mechanical properties and limited lithium salt dissociation capacity. To address these challenges, we coupled a rigid inorganic solid electrolyte, Li
6.4
La
3
Zr
1.4
Ta
0.6
O
12
(LLZTO), with a high-dielectric-constant polymer, polyvinylidene-trifluoroethylene-trifluoroethylene chloride. The resulting composite solid electrolyte (named PTCL-1.5) significantly improves Li
+
transport at low temperatures. The assembled Li|PTCL-1.5|Li cell demonstrates remarkable cycling stability, operating for over 4350 hours at −20 °C and 0.1 mA cm
−2
. The PTCL-1.5 electrolyte exhibits excellent compatibility with various cathodes. Specifically, the Li|PTCL-1.5|LiNi
0.8
Co
0.1
Mn
0.1
O
2
cell achieves a capacity of 127.69 mA h g
−1
at −20 °C, while the Li|PTCL-1.5|LiFePO
4
cell shows exceptional cycle stability, exceeding 750 cycles. Our work offers a promising approach for developing solid-state electrolytes with high electrochemical stability at low temperatures.
A new composite electrolyte, combined with rigid fillers and high dielectric polymers, promotes the dissociation of lithium salts and the construction of multiple Li
+
paths, improving Li metal batteries performances at room and low temperatures. |
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ISSN: | 2052-1537 2052-1537 |
DOI: | 10.1039/d4qm00625a |