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Mg2+-doped Na3V2(PO4)(3)/C decorated with graphene sheets: An ultrafast Na-storage cathode for advanced energy storage

机译:Mg2 +掺杂的Na3V2(PO4)(3)/ C石墨烯片装饰:超快的Na储存阴极,用于先进的能量储存

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摘要

NASICON-type Na3V2(PO4)(3) is one of the most promising cathode materials for sodium-ion batteries, delivering about two Na+-ions extraction/insertion from/into the unit structure. However, the low electronic conductivity which leads to bad rate capability and poor cycle performance, limits its practical application for sodium-ion batteries. To overcome the kinetic problem, we attempt to prepare the carbon-coated Na3V2(PO4)(3) nanocrystals further decorated by graphene sheets and doped with Mg2+ ion via the two steps of sol-gel process and solid-state treatment for the first time. Such architecture synergistically combines the advantages of two-dimensional graphene sheets and 0-dimensional Mg2+ - doped Na3V2(PO4)(3)/C nanoparticles. It greatly increases the electron/Na+-ion transport kinetics and assures the electrode structure integrity, leading to attractive electrochemical performance. When used as sodium-ion batteries cathode, the hybrid composite delivers an initial discharge capacity of 115.2 mAh g(-1) at 0.2 C rate, and retains stable discharge capacities of 113.1, 109.0, 102.4, 94.0 and 85.2 mAh g(-1) at high current rates of 1, 2, 5, 10 and 20 C rate, respectively. Thus, this nanostructure design provides a promising pathway for developing high-performance Na3V2(PO4)(3) material for sodium-ion batteries. (C) 2016 Elsevier Ltd and Techna Group S.r.l. All rights reserved.
机译:NASICON型Na3V2(PO4)(3)是钠离子电池最有希望的正极材料之一,可从单元结构中/向单元结构中提取/插入大约两个Na +离子。然而,低电导率导致差的速率能力和差的循环性能,限制了其在钠离子电池中的实际应用。为了克服动力学问题,我们尝试通过溶胶-凝胶法和固相处理这两个步骤来制备碳涂层的Na3V2(PO4)(3)纳米晶体,进一步用石墨烯片装饰并掺杂Mg2 +离子。 。这种架构协同地结合了二维石墨烯片和0维Mg2 +掺杂的Na3V2(PO4)(3)/ C纳米粒子的优点。它大大提高了电子/ Na +离子的传输动力学,并确保了电极结构的完整性,从而带来了诱人的电化学性能。当用作钠离子电池阴极时,混合复合材料在0.2 C的速率下可提供115.2 mAh g(-1)的初始放电容量,并保持113.1、109.0、102.4、94.0和85.2 mAh g(-1)的稳定放电容量)分别以1、2、5、10和20 C的高电流速率进行。因此,这种纳米结构设计为开发用于钠离子电池的高性能Na3V2(PO4)(3)材料提供了有希望的途径。 (C)2016 Elsevier Ltd和Techna Group S.r.l.版权所有。

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