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Semi-Metallic Superionic Layers Suppressing Voltage Fading of Li-Rich Layered Oxide Towards Superior-Stable Li-Ion Batteries
Authors:Qin Wang  Meng Yao  Aipeng Zhu  Qian Wang  Prof Hao Wu  Prof Yun Zhang
Institution:1. College of Materials Science and Engineering, Sichuan University, 610064 Chengdu, P. R. China

These authors contributed equally to this work.;2. College of Materials Science and Engineering, Sichuan University, 610064 Chengdu, P. R. China

Chengdu Technical University, 611730 Sichuan, P. R. China;3. College of Materials Science and Engineering, Sichuan University, 610064 Chengdu, P. R. China

Engineering Research Center of Alternative Energy Materials & Devices, Ministry of Education, Sichuan University, 610064 Chengdu, P. R. China;4. College of Materials Science and Engineering, Sichuan University, 610064 Chengdu, P. R. China

Abstract:Li-rich layered oxides (LRLOs) with greater specific capacity density are constrained by voltage attenuation and inferior rate performance because of irreversible oxygen release, metal dissolving and poor lithium-ion transport capacity. Herein, a simple surface modification is designed to solve the performance degradation and structural collapse of LRLOs. Combining experiments with density functional theory (DFT) calculations, a semi-metallic LiMn2O4-like structure (LMO) with spin-polarized conducting electrons, is introduced to the surface of the cathode restrains the activated surficial lattice oxygen ions by its stable oxygen vacancies. Additionally, Ni doping results in a fast-ion conductor Li0.8Nb0.96Ni0.2O3 structure (LNO) with lowered lithium ions diffusion barrier, which is tightly conjugating to substrate and synergistically reinforces the Li diffusion path through the cathode-electrolyte interphase. Moreover, Mn dissolution is successfully relieved due to the decrease in Mn concentration in the coating layers. As a result, the modified material (LRLO@LMO@LNO) exhibits an ultra-high discharge capacity of 120.4 mAh g−1 even at 10 C with a very small discharge voltage attenuation of 313 mV after 600 cycles (0.52 mV per cycle) at 1 C. Undoubtedly, this method discloses a simple and effective approach to promote the practical utilization of high-energy-density.
Keywords:Fast-Ion Conductor  Layered Oxides  Lithium-Ion Batteries  Semi-Metals  Voltage Fading
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