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Achieving Ultrahigh-Rate and High-Safety Li~+ Storage Based on Interconnected Tunnel Structure in Micro-Size Niobium Tungsten Oxides

机译:基于互连隧道结构的超细铌钨氧化物超高速率高安全性锂离子存储

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摘要

Developing advanced high-rate electrode materials has been a crucial aspect for next-generation lithium ion batteries (LIBs). A conventional nanoarchitecturing strategy is suggested to improve the rate performance of materials but inevitably brings about compromise in volumetric energy density, cost, safety, and so on. Here, micro-size Nb14W3O44 is synthesized as a durable high-rate anode material based on a facile and scalable solution combustion method. Aberration-corrected scanning transmission electron microscopy reveals the existence of open and interconnected tunnels in the highly crystalline Nb14W3O44, which ensures facile Li+ diffusion even within micro-size particles. In situ high-energy synchrotron XRD and XANES combined with Raman spectroscopy and computational simulations clearly reveal a single-phase solid-solution reaction with reversible cationic redox process occurring in the NWO framework due to the low-barrier Li+ intercalation. Therefore, the micro-size Nb14W3O44 exhibits durable and ultrahigh rate capability, i.e., approximate to 130 mAh g(-1) at 10 C, after 4000 cycles. Most importantly, the micro-size Nb14W3O44 anode proves its highest practical applicability by the fabrication of a full cell incorporating with a high-safety LiFePO4 cathode. Such a battery shows a long calendar life of over 1000 cycles and an enhanced thermal stability, which is superior than the current commercial anodes such as Li4Ti5O12.
机译:开发先进的高倍率电极材料一直是下一代锂离子电池(LIB)的关键方面。提出了一种常规的纳米结构化策略,以提高材料的速率性能,但不可避免地会导致体积能量密度,成本,安全性等方面的折衷。在此,基于一种简便且可扩展的溶液燃烧方法,合成了微型Nb14W3O44作为耐用的高倍率阳极材料。像差校正的扫描透射电子显微镜揭示了在高度结晶的Nb14W3O44中存在开放且相互连接的隧道,这确保了即使在微尺寸颗粒内的Li +扩散也很容易。原位高能同步加速器XRD和XANES结合拉曼光谱和计算模拟清楚地揭示了由于低势垒Li +嵌入而在NWO框架中发生的可逆阳离子氧化还原过程的单相固溶反应。因此,超细Nb14W3O44表现出耐用且超高倍率的能力,即4000次循环后,在10 C时约为130 mAh g(-1)。最重要的是,微尺寸Nb14W3O44阳极通过制造结合了高安全性LiFePO4阴极的全电池证明了其最高的实用性。这种电池具有超过1000个循环的长日历寿命和增强的热稳定性,这优于目前的商用阳极(如Li4Ti5O12)。

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