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原位碳包覆 VO·HO 超薄纳米带用于高能长寿命锂离子电池:合成、电化学性能和充放电行为。

Ultrathin Nanoribbons of in Situ Carbon-Coated VO·HO for High-Energy and Long-Life Li-Ion Batteries: Synthesis, Electrochemical Performance, and Charge-Discharge Behavior.

机构信息

School of Mechanical and Electric Engineering, Guangzhou University , Guangzhou 510006, China.

School of Materials Science and Engineering, Shanghai University , 99 Shangda, Shanghai 200444, China.

出版信息

ACS Appl Mater Interfaces. 2017 May 24;9(20):17002-17012. doi: 10.1021/acsami.7b01504. Epub 2017 May 11.

DOI:10.1021/acsami.7b01504
PMID:28459530
Abstract

The ever-growing demands of Li-ion batteries (LIBs) for high-energy and long-life applications, such as electrical vehicles, have prompted great research interest. Herein, by applying an interesting one-step high-temperature mixing method under hydrothermal conditions, ultrathin VO·HO@C nanoribbons with good crystallinity and robust configuration are in situ synthesized as promising cathode materials of high-energy, high-power, and long-life LIBs. Their capacity is up to 319 mA h/g at a current density of 100 mA/g. Moreover, the capacity of 262 mA h/g can be delivered at 500 mA/g, and 94% of capacity can be retained after 100 cycles. Even at a large current density of 3000 mA/g, they can still deliver a high capacity of 165 mA h/g, and 119% of the initial capacity can be kept after 600 cycles. Importantly, their energy density is up to 800 Wh/kg, which is 48-60% higher than those of conventional cathode materials (such as LiCoO, LiMnO, and LiFePO), and they can maintain an energy density of 355 Wh/kg at a high power density of 8000 W/kg. Furthermore, based on ex situ X-ray diffraction and X-ray photoelectron spectroscopy technology, their exact charge-discharge behavior is reasonably described for the first time. Excitingly, it is found for the first time that the as-synthesized VO·HO@C nanoribbons are also great promising cathode materials for Na-ion batteries.

摘要

锂离子电池(LIBs)在电动汽车等高能量和长寿命应用方面的需求不断增长,引起了极大的研究兴趣。在此,通过应用有趣的一步高温混合方法在水热条件下,原位合成了具有良好结晶度和坚固结构的超薄 VO·HO@C 纳米带,作为高能、高功率和长寿命 LIBs 的有前途的正极材料。其在 100 mA/g 的电流密度下的容量高达 319 mA h/g。此外,在 500 mA/g 的电流密度下可以提供 262 mA h/g 的容量,并且在 100 次循环后可以保留 94%的容量。即使在 3000 mA/g 的大电流密度下,它们仍能提供高达 165 mA h/g 的高容量,并且在 600 次循环后仍能保持初始容量的 119%。重要的是,它们的能量密度高达 800 Wh/kg,比传统正极材料(如 LiCoO、LiMnO 和 LiFePO)高 48-60%,并且在 8000 W/kg 的高功率密度下仍能保持 355 Wh/kg 的能量密度。此外,通过原位 X 射线衍射和 X 射线光电子能谱技术,首次合理地描述了它们的确切充放电行为。令人兴奋的是,首次发现合成的 VO·HO@C 纳米带也是钠离子电池的极具前景的正极材料。

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