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用于锂离子电池的类单晶耐用LiNiO正极材料

Single-Crystal-like Durable LiNiO Positive Electrode Materials for Lithium-Ion Batteries.

作者信息

Kaneda Haruki, Furuichi Yuki, Ikezawa Atsunori, Arai Hajime

机构信息

Battery Research Laboratories. Sumitomo Metal Mining Co., Ltd., 17-3 Isoura-cho, Niihama, Ehime 792-0002, Japan.

School of Materials and Chemical Technology, Tokyo Institute of Technology, 4259 Nagatsuta-cho, Midori-ku, Yokohama, Kanagawa 226-8502, Japan.

出版信息

ACS Appl Mater Interfaces. 2022 Nov 30;14(47):52766-52778. doi: 10.1021/acsami.2c13421. Epub 2022 Nov 16.

DOI:10.1021/acsami.2c13421
PMID:36383754
Abstract

Cobalt-free, nickel-rich positive electrode materials are attracting attention because of their high energy density and low cost, and the ultimate material is LiNiO (LNO). One of the issues of LNO is its poor cycling performance, which needs to be improved. Referring to a current study to show the improved stability of single-crystal-like high-nickelate materials, we fabricated single-crystal-like (SC-) LNO and the counterpart polycrystalline (PC-) LNO samples and examined their electrochemical properties. SC-LNO was nearly single-crystal-like, as proved by electron backscattering diffraction, and had more cation mixing than PC-LNO. Cycle tests under 2.5-4.2 V, a 2 rate, and 45 °C conditions showed that the capacity retention of SC-LNO after 500 cycles (63.5%) was significantly better than that of PC-LNO (36.1%) under the same conditions and even better than that of PC-LNO cycled between 2.5 and 4.15 V (50.7%) with the same initial capacity as SC-LNO. The derivative d/d profile of PC-LNO became featureless during a long cycling time, suggesting the progress of cation mixing in PC-LNO, whereas that of SC-LNO was better maintained, in accordance with the serious particle cracking in PC-LNO and no particle cracking found in SC-LNO as the result of post-mortem analysis after 500 cycles. The electrode impedance increase of PC-LNO was considerably larger than that of SC-LNO, corresponding to the formation of rock-salt phases at the surface and the cracked interface of the PC-LNO and the formation of scattered spinel-like phases with a thick cathode electrolyte interphase at the surface of SC-LNO. Accordingly, SC-LNO is shown to be less degraded in both the bulk nature (stable d/d profile and no cracking) and the surface characteristics (high rate capacity maintenance and less impedance increase), suggesting the importance of single-crystal-like particles as durable electrode materials.

摘要

无钴、富镍正极材料因其高能量密度和低成本而备受关注,其终极材料是LiNiO(LNO)。LNO的问题之一是其循环性能较差,需要加以改进。参照当前一项展示类单晶高镍酸盐材料稳定性提高的研究,我们制备了类单晶(SC-)LNO及其对应的多晶(PC-)LNO样品,并研究了它们的电化学性能。电子背散射衍射证明SC-LNO近乎类单晶,且比PC-LNO具有更多的阳离子混合。在2.5-4.2 V、2倍率和45℃条件下的循环测试表明,在相同条件下,SC-LNO在500次循环后的容量保持率(63.5%)明显优于PC-LNO(36.1%),甚至优于初始容量与SC-LNO相同、在2.5至4.15 V之间循环的PC-LNO(50.7%)。PC-LNO的导数d/d曲线在长时间循环过程中变得无特征,表明PC-LNO中阳离子混合在进展,而SC-LNO的则得到更好的保持,这与500次循环后的尸检分析结果一致,即PC-LNO出现严重颗粒开裂,而SC-LNO未发现颗粒开裂。PC-LNO的电极阻抗增加明显大于SC-LNO,这对应于PC-LNO表面和开裂界面处岩盐相的形成,以及SC-LNO表面具有厚阴极电解质界面的分散尖晶石状相的形成。因此,SC-LNO在体相性质(稳定的d/d曲线和无开裂)和表面特性(高倍率容量保持和较小的阻抗增加)方面的降解都较小,这表明类单晶颗粒作为耐用电极材料的重要性。

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