首页> 外文期刊>Solid state ionics >Na _(0.33)V _2O _5·1.5H _2O nanoringsanorods and Na _(0.33)V _2O _5·1. 5H _2O/RGO composite fabricated by a facile one pot synthesis and its lithium storage behavior
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Na _(0.33)V _2O _5·1.5H _2O nanoringsanorods and Na _(0.33)V _2O _5·1. 5H _2O/RGO composite fabricated by a facile one pot synthesis and its lithium storage behavior

机译:Na _(0.33)V _2O _5·1.5H _2O纳米环/纳诺德和Na _(0.33)V _2O _5·1。一锅法合成5H _2O / RGO复合材料及其储锂性能

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摘要

In this work, Na _(0.33)V _2O _5·1.5H _2O nanoringsanorods and Na _(0.33)V _2O _5·1.5H _2O/reduced graphene oxide (RGO) composites have been prepared through a facile hydrothermal route in acidic medium at 200°C for 2 days. The hydrothermally derived products have been characterized by powder X-ray diffraction (XRD), Fourier transform infrared spectroscopy (FT-IR), Raman spectroscopy, UV-Visible spectroscopy, Thermogravimetric analysis (TGA), Field emission scanning electron microscopy (FESEM), Transmission electron microscopy (TEM) and electrochemical discharge-charge cycling in lithium ion battery. XRD pattern exhibits the layered structure of Na _(0.33)V _2O _5·1. 5H _2O and the composite shows the presence of RGO at 2θ = 25.8°. FTIR spectrum shows that the band at 760 cm ~(- 1) could be assigned to a V-OH _2 stretching mode due to coordinated water. Raman spectrum shows that the band at 264 cm ~(- 1) is due to the presence of water molecules between the layers. FESEM/TEM micrographs reveal that the products consist of nanorings of inner diameter 5 μm and thickness of the ring is found to be 200-300 nm. Addition of exfoliated graphene oxide (EGO) destroys the formation of rings. The reduction of EGO sheets into RGO is also evidenced by the red shift of the absorbance peak from 228 nm to 264 nm. In this composite Na _(0.33)V _2O _5·1.5H _2O nanorods may adhere to the surface of RGO and/or embedded in the RGO nanosheets. As a result, an effective three-dimensional conducting network was formed by bridging RGO nanosheets, which can facilitate electron transport effectively and thus improve the kinetics and rate performance of Na _(0.33)V _2O _5·1.5H _2O nanoringsanorods. The Na _(0.33)V _2O _5·1.5H _2O/RGO composites exhibited a discharge capacity of 340 mAh g ~(- 1) at a current density of 0.1 mA g ~(- 1) and also an improved cyclic stability. RGO plays a 'flexible confinement' function to enwrap Na _(0.33)V _2O _5·1.5H _2O nanorods, which can compensate for the volume change and prevent the detachment and agglomeration of pulverized Na _(0.33)V _2O _5·1.5H _2O, thus extending the cycling life of the electrode. A probable reaction mechanism for the formation of Na _(0.33)V _2O _5·1.5H _2O nanorings is also discussed.
机译:在这项工作中,通过在酸性条件下方便的水热法制备了Na _(0.33)V _2O _5·1.5H _2O纳米环/纳诺德和Na _(0.33)V _2O _5·1.5H _2O /氧化石墨烯(RGO)复合材料。培养基在200°C下放置2天。通过粉末X射线衍射(XRD),傅立叶变换红外光谱(FT-IR),拉曼光谱,紫外可见光谱,热重分析(TGA),场发射扫描电子显微镜(FESEM)对水热衍生产品进行了表征锂离子电池中的透射电子显微镜(TEM)和电化学放电-充电循环。 XRD图谱显示Na_(0.33)V_2O_5·1的层状结构。 5H _2O和复合材料显示在2θ= 25.8°处存在RGO。 FTIR光谱表明,由于水的配位,760 cm〜(-1)的谱带可以分配给V-OH _2拉伸模式。拉曼光谱显示264cm〜(-1)处的谱带是由于层之间存在水分子所致。 FESEM / TEM显微照片显示,产品由内径为5μm的纳米环组成,并且环的厚度为200-300 nm。剥落的氧化石墨烯(EGO)的添加会破坏环的形成。从吸光度峰从228 nm到264 nm的红移也证明了EGO片材减少为RGO。在该复合物中,Na _(0.33)V _2O _5·1.5H _2O纳米棒可以粘附到RGO的表面和/或嵌入RGO纳米片中。结果,通过桥接RGO纳米片形成有效的三维导电网络,可以有效地促进电子传输,从而改善Na _(0.33)V _2O _5·1.5H _2O纳米环/纳米棒的动力学和速率性能。 Na _(0.33)V _2O _5·1.5H _2O / RGO复合材料在0.1 mA g〜(-1)的电流密度下表现出340 mAh g〜(-1)的放电容量,并具有改善的循环稳定性。 RGO具有“柔性约束”功能,包裹了Na _(0.33)V _2O _5·1.5H _2O纳米棒,可以补偿体积变化并防止粉化的Na _(0.33)V _2O _5≤1.5H的附聚_2O,从而延长了电极的循环寿命。还讨论了形成Na _(0.33)V _2O _5·1.5H _2O纳米环的可能的反应机理。

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