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首页> 外文期刊>Electrochimica Acta >Microstructure and electrochemical properties of LBO-coated Li-excess Li{sub}(1+x)Mn{sub}2O{sub}4 cathode material at elevated temperature for Li-ion battery
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Microstructure and electrochemical properties of LBO-coated Li-excess Li{sub}(1+x)Mn{sub}2O{sub}4 cathode material at elevated temperature for Li-ion battery

机译:锂离子电池LBO包覆的Li-过量Li {sub}(1 + x)Mn {sub} 2O {sub} 4正极材料的高温组织和电化学性能

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摘要

An amorphous glass film, Li{sub}2O-2B{sub}2O{sub}3 (LBO) glass, was coated on the surface of the cathode material by solution method. The Li-excess cathode powder Li{sub}(1+x)Mn{sub}2O{sub}4 derived from co-precipitation method was calcined with various weight percentage of the surface modified lithium boron glass. Fine powders with distinct particle size, size distribution and morphology were fabricated. The electron probe microanalyzer (EPMA) was employed to evaluate the composition of LBO-coated Li{sub}(1+x)Mn{sub}2O{sub}4 The morphology was observed with a field emission scanning electron microscope (FE-SEM), and the particle size in the range of several microns measured by laser scattering. The electrochemical behavior of the cathode powder was examined by using two-electrode test cells consisted of a cathode, metallic lithium as anode, and an electrolyte of 1M lithium hexafluorophosphate (LiPF{sub}6). Cyclic charge/discharge testing of the coin cells, fabricated by both LBO-coated and base Li{sub}(1+X)Mn{sub}2O{sub}4 material were conducted. The LBO-coated cathode powder with the fading rate of only 7% after 25 cycles showed better cycleability than the base one with the fading rate of 17% after 25 cycles, particularly at higher temperature. It is demonstrated that the employment of LBO glass coated Li{sub}(1+x)Mn{sub}2O{sub}4 cathode material exhibited higher discharge capacity and significantly reduced the fading rate after cyclic test.
机译:通过溶液法在阴极材料的表面上涂覆非晶玻璃膜Li {sub} 2O-2B {sub} 2O {sub} 3(LBO)玻璃。用各种重量百分比的表面改性锂硼玻璃煅烧由共沉淀法得到的过量锂阴极粉末Li {sub}(1 + x)Mn {sub} 2O {sub} 4。制备具有不同粒径,尺寸分布和形态的细粉。用电子探针显微分析仪(EPMA)评估LBO包覆的Li {sub}(1 + x)Mn {sub} 2O {sub} 4的组成。用场发射扫描电子显微镜(FE-SEM)观察形态),并且通过激光散射测量的粒径在几微米的范围内。通过使用由阴极,金属锂作为阳极和1M六氟磷酸锂(LiPF {sub} 6)的电解质组成的两电极测试电池检查阴极粉末的电化学行为。进行了由LBO涂层和基础Li {sub}(1 + X)Mn {sub} 2O {sub} 4材料制成的纽扣电池的循环充电/放电测试。 25次循环后褪色率仅为7%的LBO涂层阴极粉的循环性能优于25次循环后褪色率为17%的基础粉体,尤其是在较高温度下。结果表明,循环试验后,采用LBO玻璃包覆的Li {sub}(1 + x)Mn {sub} 2O {sub} 4正极材料表现出较高的放电容量,显着降低了褪色率。

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