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通过超临界二氧化碳辅助法提高铝掺杂锂锰铝镍钴氧化物作为锂离子电池正极材料的循环稳定性

Enhanced Cycling Stability of Al-Doped LiMn Al NiCoO as a Cathode Material for Li-Ion Batteries by a Supercritical-CO-Assisted Method.

作者信息

Yalçın Ali, Güler Mehmet Oğuz, Demir Muslum, Gönen Mehmet, Akgün Mesut

机构信息

Department of Chemical Engineering, Faculty of Engineering and Natural Sciences, Süleyman Demirel University, Isparta 32260, Türkiye.

Department of Metallurgical & Materials Engineering, Faculty of Engineering, Sakarya University, Sakarya 54197, Türkiye.

出版信息

ACS Omega. 2024 Nov 15;9(47):46813-46821. doi: 10.1021/acsomega.4c05087. eCollection 2024 Nov 26.

Abstract

Lithium-rich layered oxide materials (Li-NMC) are considered a potential cathode material for next-generation batteries, thanks to their high theoretical specific capacity. Large potential drop and capacity loss after long cycles are the main obstacles to expanding commercial utilization of Li-NMC. In the past decade, great efforts have been made to overcome those issues of Li-NMCs. In this study, Al-doped LiMn Al NiCoO cathode materials are for the first time synthesized by a supercritical-CO-assisted method. Upon the electrochemical tests of Al-doped Li-rich NMCs, the optimal initial charge/discharge profile is obtained for the Li-NMC-Al02 cathode with 374.6/247.5 mAh/g compared with that of 320.7/235.1 mAh/g for the pristine Li-NMC-Al00 sample at the C/20 rate. In addition, the Li-NMC-Al02 cathode shows an enhanced rate-capability performance compared to the pristine sample at relatively low rates. When the current density is increased from C/10 to 3C, the charge/discharge capacity values of the Li-NMC-Al02 cathode are measured as 249.88/105.84 mAh/g. Last but not least, Li-NMC-Al02 demonstrates an excellent energy retention of 92.32%, which is notably higher than that of pristine Li-NMC-Al00 (86.4%) after 120 cycles at the C/20 rate. Overall, the present fabrication and doping strategy opens a new avenue for commercialization of Li-NMC cathode materials.

摘要

富锂层状氧化物材料(Li-NMC)因其高理论比容量而被认为是下一代电池的潜在正极材料。长循环后大的电位降和容量损失是扩大Li-NMC商业应用的主要障碍。在过去十年中,人们为克服Li-NMC的这些问题付出了巨大努力。在本研究中,首次通过超临界CO辅助法合成了Al掺杂的LiMnAlNiCoO正极材料。在对Al掺杂的富锂NMC进行电化学测试时,Li-NMC-Al02正极在C/20倍率下获得了374.6/247.5 mAh/g的最佳初始充放电曲线,而原始Li-NMC-Al00样品在该倍率下为320.7/235.1 mAh/g。此外,与原始样品相比,Li-NMC-Al02正极在相对较低倍率下表现出增强的倍率性能。当电流密度从C/10增加到3C时,Li-NMC-Al02正极的充放电容量值为249.88/105.84 mAh/g。最后但同样重要的是,Li-NMC-Al02在C/20倍率下经过120次循环后表现出92.32%的优异能量保持率,明显高于原始Li-NMC-Al00(86.4%)。总体而言,目前的制备和掺杂策略为Li-NMC正极材料的商业化开辟了一条新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5a71/11603393/6fd2bc461a82/ao4c05087_0001.jpg

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