Intercalation of argon in honeycomb structures towards promising strategy for rechargeable Li-ion batteries.

J Phys Condens Matter

Department of Advanced Technologies, Graduate School of Sciences, Eskisehir Technical University, Eskisehir, TR 26555, Turkey.

Published: December 2022

High-performance rechargeable batteries are becoming very important for high-end technologies with their ever increasing application areas. Hence, improving the performance of such batteries has become the main bottleneck to transferring high-end technologies to end users. In this study, we propose an argon intercalation strategy to enhance battery performance via engineering the interlayer spacing of honeycomb structures such as graphite, a common electrode material in lithium-ion batteries (LIBs). Herein, we systematically investigated the LIB performance of graphite and hexagonal boron nitride (h-BN) when argon atoms were sent into between their layers by using first-principles density-functional-theory calculations. Our results showed enhanced lithium binding for graphite and h-BN structures when argon atoms were intercalated. The increased interlayer space doubles the gravimetric lithium capacity for graphite, while the volumetric capacity also increased by around 20% even though the volume was also increased. Themolecular dynamics simulations indicate the thermal stability of such graphite structures against any structural transformation and Li release. The nudged-elastic-band calculations showed that the migration energy barriers were drastically lowered, which promises fast charging capability for batteries containing graphite electrodes. Although a similar level of battery promise was not achieved for h-BN material, its enhanced battery capabilities by argon intercalation also support that the argon intercalation strategy can be a viable route to enhance such honeycomb battery electrodes.

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http://dx.doi.org/10.1088/1361-648X/aca8e7DOI Listing

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Intercalation of argon in honeycomb structures towards promising strategy for rechargeable Li-ion batteries.

J Phys Condens Matter

December 2022

Department of Advanced Technologies, Graduate School of Sciences, Eskisehir Technical University, Eskisehir, TR 26555, Turkey.

High-performance rechargeable batteries are becoming very important for high-end technologies with their ever increasing application areas. Hence, improving the performance of such batteries has become the main bottleneck to transferring high-end technologies to end users. In this study, we propose an argon intercalation strategy to enhance battery performance via engineering the interlayer spacing of honeycomb structures such as graphite, a common electrode material in lithium-ion batteries (LIBs).

View Article and Find Full Text PDF

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