Compositionally and Structurally Re-Designed High-Energy Li[Ni0.886Co0.049Mn0.050Al0.015]O2 Cathode for Lithium Batteries
作者
Un‐Hyuck Kim,Gyeong Won Nam,Yang‐Kook Sun
出处
期刊:Meeting abstracts [Institute of Physics] 日期:2019-09-01卷期号:MA2019-02 (5): 328-328
标识
DOI:10.1149/ma2019-02/5/328
摘要
A hybrid cathode, Li[Ni 0.886 Co 0.049 Mn 0.050 Al 0.015 ]O 2 , consisting of a core of Li[Ni 0.934 Co 0.043 Al 0.015 ]O 2 encapsulated by Li[Ni 0.844 Co 0.061 Mn 0.080 Al 0.015 ]O 2 is prepared. This core/shell-type structure combining a Ni-enriched Li[Ni x Co y Al 1 -x-y ]O 2 (NCA) cathode with an Al-doped Li[Ni x Co y Mn 1 -x-y ]O 2 (NCM) cathode provides an exceptionally high discharge capacity of 225 mAh g -1 at 4.3 V and 236 mAh g -1 at 4.5 V. The hybrid cathode also exhibits microstructural attributes that are beneficial to long-term cycling stability, namely, spatially correlated peripheral primary particles that are crystallographically textured to expedite Li intercalation and nano-sized core primary particles retard the propagation of interparticle microcracks. In addition, ordered intermixing of Li and transition metal ions is observed in the cycled hybrid cathode. This cation ordering stabilizes the host structure during cycling and facilitates Li intercalation. These structural features allow the hybrid cathode to retain 91% of its initial capacity after 1000 cycles, which easily surpasses the performance of currently available cathodes. H.-J. Noh et al., J. Power Sources 233 (2013) 121–130. Y.-K. Sun et al., Nat. Mater. 8 (2009) 320–324. W. Jun et al., Chem. Mater. 29 (2017) 5048–5052. H. Kim et al., Adv. Energy Mater. 6 (2016) 1601417.