Chemical Science and Engineering Division , Argonne National Laboratory , Argonne , Illinois 60439 , United States.
School of Material Science and Engineering , Chungnam National University , Daejeon 305-764 , Republic of Korea.
ACS Appl Mater Interfaces. 2019 Jan 30;11(4):3823-3833. doi: 10.1021/acsami.8b14668. Epub 2019 Jan 16.
Building a stable chemical environment at the cathode/electrolyte interface is directly linked to the durability of Li-ion batteries with high energy density. Recently, colloidal chemistry methods have enabled the design of core-shell nanocrystals of LiMnO, an important battery cathode, with passivating shells rich in Al through a colloidal synthetic route. These heterostructures combine the presence of redox-inactive ions on the surface to minimize undesired reactions, with the coverage of each individual particle in an epitaxial manner. Although they improve electrode performance, the exact chemistry and structure of the shell as well as the precise effect of the ratio between the shell and the active core remain to be elucidated. Correlation of these parameters to electrode properties would serve to tailor the heterostructure design toward complete shutdown of undesired reactions. These knowledge gaps are the target of this study. LiMnO nanocrystals with Al-rich shells of different thicknesses were synthesized. Multimodal characterization comprehensively revealed the elemental distribution, electronic state, and crystallinity in the heterostructures, which confirmed the potential of this approach to finely tune passivating layers. All of the modified nanocrystals improved the capacity retention while retaining charge storage compared to the bare counterpart, even under harsh conditions.
在高能量密度锂离子电池中,在阴极/电解质界面构建稳定的化学环境与电池的耐久性直接相关。最近,胶体化学方法使人们能够通过胶体合成路线设计具有富含 Al 的钝化壳的 LiMnO 核壳纳米晶体,LiMnO 是一种重要的电池阴极。这些异质结构结合了表面存在的氧化还原惰性离子,以最小化不需要的反应,以及以外延方式覆盖每个颗粒。尽管它们改善了电极性能,但壳的精确化学和结构以及壳与活性核之间的比例的确切影响仍有待阐明。将这些参数与电极性能相关联,将有助于针对完全抑制不需要的反应来调整异质结构设计。本研究的目标就是要解决这些知识空白。合成了具有不同厚度富 Al 壳的 LiMnO 纳米晶体。多模态表征全面揭示了异质结构中的元素分布、电子态和结晶度,这证实了该方法在精细调整钝化层方面的潜力。与裸对照相比,所有改性纳米晶体都提高了容量保持率,同时保留了电荷存储,即使在苛刻的条件下也是如此。