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Phase transition induced cracking plaguing layered cathode for sodium-ion battery

机译:相变诱导裂解釜型离子电池的分层阴极

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Electrochemically charging induced phase transition is a common and thermodynamically-driven phenomenon for variety of cathode materials, which couples with chemical and mechanical effects leading to performance degradation. Phase transition is particularly complex for layered sodium transition metal oxides and its related detrimental effects remain elusive. Herein, we take P2-type Na2/3Ni1/3Mn2/3O2 (P2-NNM) as an example to scrutiny the detrimental consequences upon high voltage cycling. We find that repeated P2-O2 phase transition breaks down cathode primary grains by generating high density of intragranular cracks, which is qualitatively proved to be the main cause of performance decay. Intriguingly, the nucleation and growth of intragranular crack is through loss of atoms rather than cleavage, resembling the stress corrosion cracking mechanism which preferentially nucleates at P2/O2 phase boundary. Moreover, we find the P2-structured cathode is not sensitive to surface degradation, which explains the superior performance of P2-NNM cathode when cycling at low voltage.
机译:电化学充电诱导的相变是一种用于各种阴极材料的常见和热力学驱动的现象,其与化学和机械效应耦合,导致性能降解。对于层状钠过渡金属氧化物,相转变特别复杂,其相关的不利影响仍然难以捉摸。在此,我们服用p2型Na2 / 3Ni1 / 3Mn2 / 3O2(P2-NNM),以审查高压循环时的不利后果。我们发现重复的P2-O2相变通过产生高密度的腔内裂缝来破坏阴极初级晶粒,这被定性证明是性能衰减的主要原因。有趣的是,腔内裂纹的成核和生长是通过原子损失而不是切割,类似于应力腐蚀裂解机制,其优先在P2 / O2相边界处成核。此外,我们发现P2结构阴极对表面劣化不敏感,这解释了在低电压下循环时P2-NNM阴极的优异性能。

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