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Density functional theory insights into the structural stability and Li diffusion properties of monoclinic and orthorhombic Li2FeSiO4 cathode

机译:密度泛函理论洞察单斜方晶和正交晶Li2FeSiO4阴极的结构稳定性和Li扩散特性

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Lithium iron orthosilicate (Li2FeSiO4) is an important alternative cathode for next generation Li-ion batteries due to its high theoretical capacity (330 mA h/g). However, its development has faced great challenges arising from significant structural complexity, including the disordered arrangement/orientation of Fe/Si tetrahedra, polytypes and its poorly understood Li storage and transport properties. In this context, ab-initio calculations are employed to investigate the phase stability and Li diffusion profiles of both monoclinic (P2(1)) and orthorhombic (Pmn2(1)) Li2FeSiO4 orthosilicates. The calculations demonstrate that formation of Li Fe antisites can induce a metastability competition between both phases, with neither dominating across nearly the entire discharging profile from Li2FeSiO4 through to LiFeSiO4. Furthermore, structural instability is shown to be a serious concern at discharge concentrations below LiFeSiO4 (1 Li extraction) due to the shared occupation of Li donated electrons with oxygen 2p orbitals - rather than the hypothesized transition to a tetravalent Fe4+ state. This finding is further supported by diffusion calculations that have determined a high activation energy barrier towards fast charging and rapid phase transitions. In summary, these theoretical results provide critical and timely insight into the structural dynamics of lithium iron orthosilicate, in pursuit of high energy density cathodes. (C) 2016 Elsevier B.V. All rights reserved.
机译:正硅酸锂铁(Li2FeSiO4)由于具有较高的理论容量(330 mA h / g),是下一代锂离子电池的重要替代阴极。然而,其发展面临着巨大的挑战,这是由于结构的复杂性而产生的,包括Fe / Si四面体的无序排列/取向,多型性及其对锂的储藏和运输性质的了解不足。在这种情况下,从头算就可以用来研究单斜晶系(P2(1))和斜方晶系(Pmn2(1))Li2FeSiO4正硅酸盐的相稳定性和Li扩散曲线。计算结果表明,Li Fe反位点的形成可引起两相之间的亚稳态竞争,而这两个方向都不会在从Li2FeSiO4到LiFeSiO4的几乎整个放电过程中起主导作用。此外,由于低于LiFeSiO4的放电浓度(1次Li萃取),结构不稳定性受到严重关注,这是由于Li供体电子与氧2p轨道共同占据,而不是假设的过渡为四价Fe4 +态。扩散计算进一步支持了这一发现,扩散计算确定了对快速充电和快速相变的高激活能垒。总而言之,这些理论结果为追求高能量密度阴极提供了及时而关键的洞察力,以了解正硅酸锂铁的结构动力学。 (C)2016 Elsevier B.V.保留所有权利。

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