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首页> 外文期刊>RSC Advances >Raman spectral signature of Mn-rich nanoscale phase segregations in carbon free LiFe1-xMnxPO4 prepared by hydrothermal technique
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Raman spectral signature of Mn-rich nanoscale phase segregations in carbon free LiFe1-xMnxPO4 prepared by hydrothermal technique

机译:水热技术制备的无碳LiFe1-xMnxPO4中富锰纳米相偏析的拉曼光谱特征

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摘要

Mn-rich nanoscale secondary phases were identified in LiFe1-xMnxPO4, despite the known complete solubility for the LiFePO4-LiMnPO4 system and the observed linear increase in the lattice parameters of LiFe1-xMnxPO4 with increasing Mn concentration. Carbon free LiFe1-xMnxPO4 (x = 0, 0.05, 0.10, 0.25) were prepared by the sequential precipitation of Li3PO4 and (Fe1-xMnx)(3)(PO4)(2), followed by hydrothermal treatment. At low doping concentration (x <= 0.05), Li-Mn-O secondary phases were discerned by Raman spectra, which corroborated with the inductively coupled plasma elemental analysis. Though energy dispersive elemental mapping with scanning transmission electron microscopy do not show segregation of Mn at low concentrations, Mn-rich phases were clearly discerned at high doping concentration (x = 0.25). The kinetics of Mn-rich phase formation during hydrothermal synthesis of carbon free LiFe1-xMnxPO4, which was attributed to the difference in the solubility constant of the intermediate products of Li3PO4 and (Fe1-xMnx)(3)(PO4)(2), and its implications on the capacity of LiFe1-xMnxPO4 cathode material were discussed. Our results present how de-convoluted Raman peaks show clear signatures of nanophase impurity segregations and how an increase in the lattice constant with Mn doping concentration can be decisive.
机译:尽管已知LiFePO4-LiMnPO4系统具有完全的溶解度,并且观察到LiFe1-xMnxPO4的晶格参数随Mn浓度的增加而线性增加,但在LiFe1-xMnxPO4中仍发现了富锰的纳米级次要相。通过依次沉淀Li3PO4和(Fe1-xMnx)(3)(PO4)(2)制备无碳LiFe1-xMnxPO4(x = 0、0.05、0.10、0.25),然后进行水热处理。在低掺杂浓度(x <= 0.05)下,通过拉曼光谱可识别Li-Mn-O次级相,这与电感耦合等离子体元素分析相符。尽管使用扫描透射电子显微镜的能量色散元素图谱未显示低浓度下的Mn偏析,但在高掺杂浓度下(x = 0.25)可以清楚地识别出富锰相。水热合成无碳LiFe1-xMnxPO4期间富锰相形成的动力学,这归因于Li3PO4和(Fe1-xMnx)(3)(PO4)(2)中间产物的溶解常数不同,讨论了其对LiFe1-xMnxPO4正极材料容量的影响。我们的结果表明,去卷积的拉曼峰如何显示出清晰的纳米相杂质偏析特征,以及随着Mn掺杂浓度晶格常数的增加如何起决定性作用。

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