复合锂导电氧化物材料合成中的相变特征

I. Lisovskyi, M. Barykin, S. Solopan, A. Belous
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引用次数: 0

摘要

锂离子电池(LIB’s)广泛用于消费电子产品、移动电话、个人电脑以及混合动力和电动汽车。液态电解质主要由非质子有机溶剂和锂导电盐组成,用于锂离子在LIB中的转移。然而,液体电解质在LIB中的应用会导致许多问题,其中最重要的是由于易燃有机溶剂的存在而导致电池在运行过程中着火的风险,以及由于液体电解质与电极材料在循环过程中相互作用而导致容量损失。另一种确保锂电池安全性和可靠性的方法是开发完全固态电池(SSB)。SSB不仅由于没有可燃的有机成分而具有固有的安全性,而且还具有显着增加能量密度的潜力。SSB使用固体电解质,同时充当电绝缘体和离子导体,而不是基于饱和液体电解质的聚丙烯多孔分离器。使用紧凑的固体电解质,作为防止锂枝晶生长的物理屏障,也允许使用锂金属作为阳极材料。理想的做法是使用氧化物系统作为SSB的外壳电解质,因为它们耐湿气和大气空气。锂导电氧化物材料在室温下具有较高的锂电导率,可作为全固态电池、锂空气电池等电化学器件的固体电解质,其中具有NASICON、钙钛矿和石榴石型结构的材料是最有前途的材料。采用固相反应方法,研究了在空气中合成具有nasicon型结构的Li1.3Al0.3Ti1.7(PO4)3、钙钛矿型结构的Li0.34La0.56TiO3和石榴石型结构的Li6.5La3Zr1.5Nb0.5O12复合锂导电氧化物的相变。确定了上述化合物的最佳合成条件。
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FEATURES OF PHASE TRANSFORMATIONS IN THE SYNTHESIS OF COMPLEX LITHIUM-CONDUCTING OXIDE MATERIALS
Lithium-ion batteries (LIB`s) are widely used in consumer electronics, mobile phones, personal computers, as well as in hybrid and electric vehicles. Liquid electrolytes, which mainly consist of aprotic organic solvents and lithium-conductive salts, are used for the transfer of lithium ions in LIB`s. However, the application of liquid electrolytes in LIB`s leads to a number of problems, the most significant of which are the risk of battery ignition during operation due to the presence of flammable organic solvents and loss of capacity due to the interaction of liquid electrolyte with electrode materials during cycling. An alternative that can ensure the safety and reliability of lithium batteries is the development of completely so­lid state batteries (SSB`s). SSB`s are not only inherently safer due to the absence of flammable organic components, but also have the potential to increase significantly the energy density. Instead of a porous separator based on polypropylene saturated with a liquid electrolyte, the SSB`s use a solid electrolyte that acts as an electrical insulator and an ionic conductor at the same time. The use of a compact solid electrolyte, which acts as a physical barrier that prevents the growth of lithium dendrites, also allows using lithium metal as the anode material. It is desirable to use oxide systems as the so­lid electrolytes for SSB`s, as they are resistant to moisture and atmospheric air. Among the lithi­um-conducting oxide materials, which exhibit relatively high lithium conductivity at a room temperature and can be used as a solid electrolyte in the completely solid-state batteries, lithium-air batteries and other electrochemical devices, the most promising materials are ones with NASICON, perovskite and garnet-type structures. The phase transformations that occur during the synthesis of complex lithium-conductive oxides, namely Li1.3Al0.3Ti1.7(PO4)3 with the NASICON-type structure, Li0.34La0.56TiO3 with the perovskite-type structure and Li6.5La3Zr1.5Nb0.5O12 with the garnet-type structure by the solid-state reactions method in an air were investigated. The optimal conditions for the synthesis of each of the above-mentioned compounds were determined.
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