High-performance solid-solution potassium-ion intercalation mechanism of multilayered turbostratic graphene nanosheets

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초록

The solid-solution reaction between an alkali cation and an active host material is known as a single-phase redox mechanism, and it is typically accompanied by a continuous voltage change. It is distinct from the typical alkali cation intercalation reaction at an equivalent site of the active host material, which exhibits a voltage plateau. Herein, we report an unusual solid-solution potassium-ion intercalation mechanism with a low-voltage plateau capacity on multilayered turbostratic graphene nanosheets (T-GNSs). Despite the disordered graphitic structure with a broad range of d-spacings (3.65-4.18 angstrom), the T-GNSs showed a reversible plateau capacity of similar to 200 mA h g(-1), which is higher than that of a well-ordered graphite nanoplate (similar to 120 mA h g(-1)). In addition, a sloping capacity of similar to 220 mA h g(-1) was delivered with the plateau capacity, and higher rate capabilities, better reversibility, and a more stable cycling performance were confirmed on the turbostratic microstructure. First-principles calculations suggest that the multitudinous lattice domains of the T-GNSs contain diverse intercalation sites with strong binding energies, which could be the origin of the high-performance solid-solution potassium-ion intercalation behavior when the turbostratic graphene stacks have a d-spacing smaller than that of equilibrium potassium-graphite intercalation compounds (5.35 angstrom). (C) 2021 Science Press and Dalian Institute of Chemical Physics, Chinese Academy of Sciences. Published by ELSEVIER B.V. and Science Press. All rights reserved.

키워드

Turbostratic graphiteGraphene nanosheetDefective carbonAnodePotassium-ion batteriesDUAL-DOPED CARBONANODE MATERIALBATTERIES
제목
High-performance solid-solution potassium-ion intercalation mechanism of multilayered turbostratic graphene nanosheets
저자
Um, JiaeYoon, Seung UkKim, HoseongYoun, Beom SikJin, Hyoung-JoonLim, Hyung-KyuYun, Young Soo
DOI
10.1016/j.jechem.2021.11.027
발행일
2022-04
유형
Article
저널명
Journal of Energy Chemistry
67
페이지
814 ~ 823