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首页> 外文期刊>Journal of power sources >Heating-temperature-dependent electrochemical-performance-enhanced surface structural evolution during chemical treatment of Li-rich layered material by sodium thiosulfate
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Heating-temperature-dependent electrochemical-performance-enhanced surface structural evolution during chemical treatment of Li-rich layered material by sodium thiosulfate

机译:加热温度依赖的电化学性能增强表面结构演变在硫代硫酸钠锂富含层材料的化学处理过程中

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摘要

Chemical activation of Li-rich layered oxide (LLO) is an effective way to mitigate the intrinsic drawbacks of LLO. Herein, the Li-rich layered material 0.25Li(2)MnO(3).0.75LiMn(0.42)Ni(0.48)Co(0.1)O(2), which has a relatively higher Ni content, is treated with a common reducing substance sodium thiosulfate (Na2S2O3) over a wide range of heating temperature (300 degrees C, 500 degrees C, 750 degrees C). The experimental results demonstrate that: (1) Na2S2O3 can successfully pre-activate LLO by extracting Li+ out of the material to form LiNaSO4, (2) the pre-activated material shows a high correlation with the heating temperature of this treatment, that is, with the increase of heating temperature from 300 degrees C to 750 degrees C the spinel-to-layered phase transition takes place in the particle surface region. This unusual structural evolution is in fact associated with the enrichment of Ni element in particle surface region, meanwhile leads to a remarkable improvement of each electrochemical performance. Hence, this high temperature surface treatment by Na2S2O3 is anticipated to be an effective strategy to pre-activate the Li-rich layered material so that overcomes its intrinsic drawbacks to some extent.
机译:锂富含层氧化物(LLO)的化学活化是减轻LLO内在缺点的有效方法。在此,用常见的还原处理含量富含量的分层材料0.25li(2)mnO(3).0.0.75磅(0.42)Ni(0.42)的Ni(0.42)CO(0.1)O(2),其常见还原物质硫代硫酸钠(Na2S2O3)在宽范围的加热温度范围内(300℃,500℃,750℃)。实验结果表明:(1)Na 2 S 2 O 3可以通过提取Li +从材料中提取Li +来成功地激活LLO以形成LinasO4,(2)预活化材料与该处理的加热温度显示出高的相关性,即随着300℃至750℃的加热温度的增加,在颗粒表面区域中发生尖晶石到层状相转变。这种不寻常的结构演变实际上与粒子表面区域中的Ni元素的富集相关,同时导致每个电化学性能的显着提高。因此,预计Na 2 S 2 O 3的高温表面处理是一种有效的策略,以预活化富富锂的层状材料,使其在一定程度上克服其内在缺点。

著录项

  • 来源
    《Journal of power sources》 |2020年第15期|227795.1-227795.10|共10页
  • 作者单位

    Gen Res Inst Nonferrous Met Beijing 100088 Peoples R China|Grinm Grp Corp Ltd Natl Power Battery Innovat Ctr Beijing 100088 Peoples R China|China Automot Battery Res Inst Co Ltd Beijing 101407 Peoples R China;

    Grinm Grp Corp Ltd Natl Power Battery Innovat Ctr Beijing 100088 Peoples R China|China Automot Battery Res Inst Co Ltd Beijing 101407 Peoples R China;

    Gen Res Inst Nonferrous Met Beijing 100088 Peoples R China|Grinm Grp Corp Ltd Natl Power Battery Innovat Ctr Beijing 100088 Peoples R China|China Automot Battery Res Inst Co Ltd Beijing 101407 Peoples R China;

    Gen Res Inst Nonferrous Met Beijing 100088 Peoples R China|Grinm Grp Corp Ltd Natl Power Battery Innovat Ctr Beijing 100088 Peoples R China|China Automot Battery Res Inst Co Ltd Beijing 101407 Peoples R China;

    Gen Res Inst Nonferrous Met Beijing 100088 Peoples R China|Grinm Grp Corp Ltd Natl Power Battery Innovat Ctr Beijing 100088 Peoples R China|China Automot Battery Res Inst Co Ltd Beijing 101407 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Lithium-ion batteries; Li-rich layered material; Chemical activation; Surface structural evolution; Sodium thiosulfate;

    机译:锂离子电池;富富分层材料;化学活化;表面结构演化;硫代硫酸钠;

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