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Exploring Lithium Doping in the Layered Transition-Metal Oxides As Cathode Materials for Sodium-Ion Batteries

机译:探索层状过渡金属氧化物中的锂掺杂作为钠离子电池的阴极材料

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Layered transition metal oxides have been one of the most promising cathode materials in the lithium-ion as well as sodium-ion batteries. In the case of sodium-ion battery configuration, several transition metals elements are electrochemically active, leading to an extensive study on the composition and structure-property relationships. Particularly, substituting elements in the layered structure is one of the effective approaches to alter the composition, structure, and electrochemical properties. The substituted element could be positioned at either transition metal site or alkali site of the layered structure and plays different role depending on the position. In this talk, I will present the substitution of lithium on different sites within the layered oxides and its effect on the electrochemical performances. Lithium was substituted at (1) alkali site of O3-type layered structure and (2) transition metal site of P2-type layered structure as cathode materials for sodium-ion batteries. The substitution sites were identified by synchrotron and neutron powder diffraction patterns. Each type was compared with transition metal oxides that do not include lithium in order to understand the role of lithium in each substitution site.
机译:层状过渡金属氧化物是锂离子中最有前景的阴极材料之一以及钠离子电池。在钠离子电池配置的情况下,几种过渡金属元素是电化学活性的,导致对组合物和结构性质的关系进行了广泛的研究。特别地,层状结构中的替代元素是改变组合物,结构和电化学性质的有效方法之一。取代的元件可以定位在层状结构的过渡金属位点或碱位置,并根据位置起作用不同的作用。在这次谈话中,我将在分层氧化物中的不同部位替代锂替代锂及其对电化学性能的影响。在O3型分层结构的(1)碱基位的(2)的P2型层状结构的过渡金属位点被取代,作为钠离子电池的阴极材料。通过同步rotron和中子粉末衍射图案识别替代位点。将每种类型与不包括锂的过渡金属氧化物进行比较,以便理解锂在每个替换位点中的作用。

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