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层状 Li(NiMnCo)O 热稳定性的调谐。

Tuning of Thermal Stability in Layered Li(NiMnCo)O.

机构信息

School of Advanced Materials, Peking University, Shenzhen Graduate School , Shenzhen 518055, People's Republic of China.

Electrochemical Technology Program, Chemical Sciences and Engineering Division, Argonne National Laboratory , Argonne, Illinois 60439, United States.

出版信息

J Am Chem Soc. 2016 Oct 12;138(40):13326-13334. doi: 10.1021/jacs.6b07771. Epub 2016 Sep 30.

Abstract

Understanding and further designing new layered Li(NiMnCo)O (NMC) (x + y + z = 1) materials with optimized thermal stability is important to rechargeable Li batteries (LIBs) for electrical vehicles (EV). Using ab initio calculations combined with experiments, we clarified how the thermal stability of NMC materials can be tuned by the most unstable oxygen, which is determined by the local coordination structure unit (LCSU) of oxygen (TM(Ni, Mn, Co)-O-Li): each O atom bonds with three transition metals (TM) from the TM-layer and three to zero Li from fully discharged to charged states from the Li-layer. Under this model, how the lithium content, valence states of Ni, contents of Ni, Mn, and Co, and Ni/Li disorder to tune the thermal stability of NMC materials by affecting the sites, content, and the release temperature of the most unstable oxygen is proposed. The synergistic effect between Li vacancies and raised valence state of Ni during delithiation process can aggravate instability of oxygen, and oxygen coordinated with more nickel (especially with high valence state) in LSCU becomes more unstable at a fixed delithiation state. The Ni/Li mixing would decrease the thermal stability of the "Ni═Mn" group NMC materials but benefit the thermal stability of "Ni-rich" group, because the Ni in the Li layer would form 180° Ni-O-Ni super exchange chains in "Ni-rich" NMC materials. Mn and Co doping can tune the initial valence state of Ni, local coordination environment of oxygen, and the Ni/Li disorder, thus to tune the thermal stability directly.

摘要

理解并进一步设计具有优化热稳定性的新型分层 Li(NiMnCo)O (NMC) (x + y + z = 1) 材料对于电动汽车 (EV) 的可充电 Li 电池 (LIB) 非常重要。我们使用从头算计算结合实验,阐明了最不稳定的氧如何通过局部配位结构单元(LCSU)的氧(TM(Ni,Mn,Co)-O-Li)来调节 NMC 材料的热稳定性:每个 O 原子与来自 TM 层的三个过渡金属(TM)以及来自 Li 层的三个零 Li 键合,从完全放电到充电状态。在这种模型下,如何通过影响最不稳定氧的位置、含量和释放温度来调节 NMC 材料的热稳定性的锂含量、Ni 的价态、Ni、Mn 和 Co 的含量以及 Ni/Li 无序性被提出。脱锂过程中 Li 空位和 Ni 价态升高的协同作用会加剧氧的不稳定性,而在 LCSU 中与更多镍(尤其是高价态)配位的氧在固定脱锂状态下变得更加不稳定。Ni/Li 混合会降低“Ni═Mn”组 NMC 材料的热稳定性,但有利于“富 Ni”组的热稳定性,因为 Li 层中的 Ni 会在“富 Ni”NMC 材料中形成 180° Ni-O-Ni 超交换链。Mn 和 Co 掺杂可以调节 Ni 的初始价态、氧的局部配位环境和 Ni/Li 无序性,从而直接调节热稳定性。

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