Chemical Sciences and Engineering Division, Argonne National Laboratory, Lemont, IL, USA.
School of Advanced Materials, Peking University, Shenzhen Graduate School, Shenzhen, China.
Nature. 2022 Jun;606(7913):305-312. doi: 10.1038/s41586-022-04689-y. Epub 2022 Jun 8.
Li- and Mn-rich (LMR) cathode materials that utilize both cation and anion redox can yield substantial increases in battery energy density. However, although voltage decay issues cause continuous energy loss and impede commercialization, the prerequisite driving force for this phenomenon remains a mystery Here, with in situ nanoscale sensitive coherent X-ray diffraction imaging techniques, we reveal that nanostrain and lattice displacement accumulate continuously during operation of the cell. Evidence shows that this effect is the driving force for both structure degradation and oxygen loss, which trigger the well-known rapid voltage decay in LMR cathodes. By carrying out micro- to macro-length characterizations that span atomic structure, the primary particle, multiparticle and electrode levels, we demonstrate that the heterogeneous nature of LMR cathodes inevitably causes pernicious phase displacement/strain, which cannot be eliminated by conventional doping or coating methods. We therefore propose mesostructural design as a strategy to mitigate lattice displacement and inhomogeneous electrochemical/structural evolutions, thereby achieving stable voltage and capacity profiles. These findings highlight the significance of lattice strain/displacement in causing voltage decay and will inspire a wave of efforts to unlock the potential of the broad-scale commercialization of LMR cathode materials.
富锂和富锰(LMR)阴极材料利用阳离子和阴离子氧化还原反应,可以显著提高电池的能量密度。然而,尽管电压衰减问题导致持续的能量损失并阻碍了商业化,但这种现象的先决驱动力仍然是一个谜。在这里,我们使用原位纳米级敏感相干 X 射线衍射成像技术,揭示了在电池运行过程中纳米应变和晶格位移不断积累。有证据表明,这种效应是结构降解和氧损失的驱动力,这引发了 LMR 阴极中众所周知的快速电压衰减。通过对跨越原子结构、初级粒子、多粒子和电极水平的微到宏观长度的特性进行研究,我们证明了 LMR 阴极的不均匀性质不可避免地导致有害的相位移/应变,这是传统掺杂或涂层方法无法消除的。因此,我们提出了介观结构设计作为一种减轻晶格位移和不均匀电化学/结构演变的策略,从而实现稳定的电压和容量曲线。这些发现强调了晶格应变/位移在导致电压衰减方面的重要性,并将激发一波努力,以释放 LMR 阴极材料广泛商业化的潜力。