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A high-throughput approach developing lithium-niobium-tantalum oxides as electrolyte/cathode interlayers for high-voltage all-solid-state lithium batteries

机译:开发锂 - 铌 - 钽氧化物作为高压全固态锂电池的电解质/阴极中间层的高通量方法

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摘要

The ever-increasing interest in sustainable mobility is driving the development of innovative batteries with increased energy densities relative to currently commercialized lithium-ion batteries. All-solid-state batteries using 5 V-class positive electrodes are one of those batteries due to their larger volumetric energy density and their superior durability. However, their power density tends to be limited by the large charge transfer resistance at their electrolyte/5 V-electrode interfaces; one explanation for this is the development of significant Li+ deficient layers at the interface. Here we propose a new interlayer material that would effectively resolve the Li+ deficient layers. The partially-crystallized Li56Nb22Ta22 oxide was identified using the molecular beam epitaxy (MBE) based high-throughput physical vapor deposition (HT-PVD) approach. Its higher ionic conductivity of 4.2 ?S cm?1 and higher permittivity of 165 when measured at 254 kHz, relative to those of conventional LiNbO3 interlayer (1.8 ?S cm?1 and 95, respectively) will be effective for fast charge transfer reactions at the electrolyte /cathode interfaces in 5 V-class all-solid-state batteries.
机译:对可持续移动性的日益增长的兴趣正推动着与目前商业化的锂离子电池相比具有更高能量密度的创新电池的发展。使用5 V级正极的全固态电池是其中一种,因为它们具有更大的体积能量密度和卓越的耐用性。但是,它们的功率密度往往会受到电解质/ 5 V电极界面处较大的电荷转移电阻的限制;对此的一种解释是在界面处形成了显着的Li +缺陷层。在这里,我们提出了一种新的中间层材料,可以有效解决Li +缺陷层。使用基于分子束外延(MBE)的高通量物理气相沉积(HT-PVD)方法鉴定了部分结晶的Li56Nb22Ta22氧化物。相对于传统的LiNbO3中间层(分别为1.8?S cm?1和95),在254 kHz下测量时,其较高的离子电导率为4.2?S cm?1,较高的介电常数为165,将对快速电荷转移反应有效5 V级全固态电池中的电解质/阴极接口。

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