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Ethylene glycol-assisted hydrothermal synthesis and characterization of bow-tie-like lithium iron phosphate nanocrystals for lithium-ion batteries

机译:乙二醇辅助水热法合成锂离子电池蝴蝶结状磷酸铁锂纳米晶

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In this work, we present a novel binary solvent of ethylene glycol/water medium (W/EG 50:50) that play an important role in the formation of the hierarchical meso-Structures of bow-tie-like composition units composed of self-assembly lithium iron phosphate (LFP) nano-sheets. Citric acid uses as inorganic carbon source and no other surfactant or template agent is applied. Results show that the crystallinity and the size of the particles depend on the nature of the solvent used. TEM results show that the sample prepared in ethylene glycol (EG-LFP/C) consists of well-distributed nanoparticles of size approximately 50 nm in diameter, which is uniformly embedded in thin carbon layers. The EG-LFP/C composite delivers the first discharge capacity of 166 mAh g(-1), i.e. 97.6% of the theoretical capacity, when tested under a discharge rate of 0.1C. This material shows specific discharge capacities as high as 114 mAh g(-1) at 10C rates and exhibits a long-term cycling stability with a capacity loss of only 1.4% after 100 cycles. The high rate performance could be attributed to the amount and/or the quality of the thin carbon coating, improved crystallinity as well as high specific surface area and porosity induced by the special bow-tie-like mesostructures. (C) 2015 Elsevier B.V. All rights reserved.
机译:在这项工作中,我们提出了一种新型的乙二醇/水介质二元溶剂(W / EG 50:50),该二元溶剂在由自组装组成的蝴蝶结状组成单元的分层介观结构的形成中起着重要作用。组装磷酸铁锂(LFP)纳米片。柠檬酸用作无机碳源,不施加其他表面活性剂或模板剂。结果表明,结晶度和颗粒尺寸取决于所用溶剂的性质。 TEM结果表明,在乙二醇(EG-LFP / C)中制备的样品由直径约50 nm的分布良好的纳米颗粒组成,均匀地嵌入薄碳层中。在0.1C的放电速率下进行测试时,EG-LFP / C复合材料的首次放电容量为166 mAh g(-1),即理论容量的97.6%。该材料在10C速率下显示出高达114 mAh g(-1)的比放电容量,并显示出长期的循环稳定性,在100次循环后容量损失仅为1.4%。高速率性能可以归因于薄碳涂层的数量和/或质量,结晶度的提高以及特殊的领结状介孔结构引起的高比表面积和孔隙率。 (C)2015 Elsevier B.V.保留所有权利。

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