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Exploring Lithium Deficiency in Layered Oxide Cathode for Li-Ion Battery
被引:6
作者:
Cho, Sung-Jin
[1
]
Uddin, Md-Jamal
[1
]
Alaboina, Pankaj K.
[1
]
Han, Sang Sub
[2
]
Nandasiri, Manjula I.
[3
]
Choi, Yong Seok
[2
]
Hu, Enyuan
[4
]
Nam, Kyung-Wan
[5
]
Schwarz, Ashleigh M.
[6
]
Nune, Satish K.
[7
]
Cho, Jong Soo
[1
]
Oh, Kyu Hwan
[2
]
Choi, Daiwon
[7
]
机构:
[1] North Carolina Agr & Tech State Univ, Joint Sch Nanosci & Nanoengn, Greensboro, NC 27401 USA
[2] Seoul Natl Univ, Dept Mat Sci Engn, Seoul 08826, South Korea
[3] Montana State Univ, Dept Phys, Imaging & Chem Anal Lab, Bozeman, MT 59718 USA
[4] Brookhaven Natl Lab, Div Chem, Upton, NY 11973 USA
[5] Dongguk Univ, Dept Energy Mat Engn, Seoul 04620, South Korea
[6] Pacific Northwest Natl Lab, Environm & Mol Sci Lab, Richland, WA 99352 USA
[7] Pacific Northwest Natl Lab, Div Energy & Environm, Richland, WA 99352 USA
基金:
美国国家科学基金会;
关键词:
heterostructures;
high energy-density;
lithium-deficiency;
lithium-ion batteries;
multiphase cathode;
ELECTROCHEMICAL PERFORMANCE;
HIGH-ENERGY;
X-RAY;
HIGH-CAPACITY;
POSITIVE ELECTRODE;
THERMAL-STABILITY;
SURFACE-CHEMISTRY;
LINI1/3CO1/3MN1/3O2;
SPINEL;
MORPHOLOGY;
D O I:
10.1002/adsu.201700026
中图分类号:
X [环境科学、安全科学];
学科分类号:
08 ;
0830 ;
摘要:
The ever-growing demand for high capacity cathode materials is on the rise since the futuristic applications are knocking on the door. Conventional approach to developing such cathode relies on the lithium-excess materials to operate the cathode at high voltage and extract more lithium-ion. Yet, they fail to satiate the needs because of their unresolved issues upon cycling such as, for lithium manganese-rich layered oxides-their voltage fading, and for as nickel-based layered oxides-the structural transition. Here, in contrast, lithium-deficient ratio is demonstrated as a new approach to attain high capacity at high voltage for layered oxide cathodes. Rapid and cost effective lithiation of a porous hydroxide precursor with lithium deficient ratio is acted as a driving force to partially convert the layered material to spinel phase yielding in a multiphase structure (MPS) cathode material. Upon cycling, MPS reveals structural stability at high voltage and high temperature and results in fast lithium-ion diffusion by providing a distinctive solid electrolyte interface (SEI) chemistry-MPS displays minimum lithium loss in SEI and forms a thinner SEI. MPS thus offers high energy and high power applications and provides a new perspective compared to the conventional layered cathode materials denying the focus for lithium excess material.
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