Twin boundary defect engineering improves lithium-ion diffusion for fast-charging spinel cathode materials
Инженерия дефектов двойниковых границ улучшает диффузию ионов лития в шпинельных катодных материалах для быстрой зарядки
2021-05-25
SCID: 54.1/yck83k3f
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fast-charging performancelithium-ion diffusionneutron diffractionspinel cathodestwin boundary defects
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Abstract (AI)
Defect engineering on electrode materials is considered an effective approach to improve the electrochemical performance of batteries since the presence of a variety of defects with different dimensions may promote ion diffusion and provide extra storage sites. However, manipulating defects and obtaining an in-depth understanding of their role in electrode materials remain challenging. Here, we deliberately introduce a considerable number of twin boundaries into spinel cathodes by adjusting the synthesis conditions. Through high-resolution scanning transmission electron microscopy and neutron diffraction, the detailed structures of the twin boundary defects are clarified, and the formation of twin boundary defects is attributed to agminated lithium atoms occupying the Mn sites around the twin boundary. In combination with electrochemical experiments and first-principles calculations, we demonstrate that the presence of twin boundaries in the spinel cathode enables fast lithium-ion diffusion, leading to excellent fast charging performance, namely, 75% and 58% capacity retention at 5 C and 10 C, respectively. These findings demonstrate a simple and effective approach for fabricating fast-charging cathodes through the use of defect engineering.
Key Findings
1
Electrochemical experiments and first-principles calculations demonstrated that twin boundaries accelerate lithium-ion diffusion in the spinel cathode.
2
High-resolution microscopy and neutron diffraction showed that agminated lithium atoms occupying manganese sites around twin boundaries cause their formation.
3
The study establishes defect engineering as a simple, effective strategy for fabricating fast-charging spinel cathodes.
4
Twin boundaries were deliberately introduced into spinel cathodes by adjusting synthesis conditions.
5
Twin-boundary engineering produced strong fast-charging performance, retaining 75% capacity at 5 C and 58% at 10 C.
Research Object
spinel cathode materials containing engineered twin boundary defects
Research Subject
the effect of twin boundary defects on lithium-ion diffusion and fast-charging electrochemical performance
Publication Details
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2021-05-25
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