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gamma-Fe2O3 Nanocrystalline Microspheres with Hybrid Behavior of Battery-Supercapacitor for Superior Lithium Storage

机译:具有超级电池储能超级电容器混合性能的γ-Fe2O3纳米微球

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Maghemite (gamma-Fe2O3) nanocrystalline microspheres (MNMs) self-assembled with 52 nm nanocrystals bridged with FeOOH around grain boundaries were formed by solvothermal reaction and thermal oxidation. The unique architecture endows the MNMs with the lithium storage behavior of a hybrid battery-supercapacitor electrode: initial charge capacity of 1060 mAh g(-1) at the 100 mA g(-1) rate, stable cyclic capacity of 1077.9 mAh g(-1) at the same rate after 140 cycles, and rate capability of 538.8 mAh g(-1) at 2400 mA g(-1) This outstanding performance was attributed to the nanocrystal superiority, which shortens the Li+ diffusion paths. The mechanism of this hybrid anode material was investigated with experimental measurements and structural analysis. The results indicate that at the first discharge, the MNM nanocrystal microsphere, whose structure can buffer the volume change that occurs during lithiation/delithiation, goes through four stages: Li+ insertion in cation vacancies, spinel-to-rocksalt transformation, Li+ intercalation of Li1.75+xFe2O3 nanocrystals, and interfacial Li storage around nanocrystal boundaries. Only the latter two stages were reversible at and after the second charging/discharging cycle, exhibiting the hybrid behavior of a battery-supercapacitor with superior lithium storage.
机译:通过溶剂热反应和热氧化形成了以FeOOH桥接的52 nm纳米晶体自组装的磁赤铁矿(γ-Fe2O3)纳米晶体微球(MNMs)。独特的架构使MNM具有混合电池-超级电容器电极的锂存储行为:在100 mA g(-1)速率下的初始充电容量为1060 mAh g(-1),稳定的循环容量为1077.9 mAh g(- 1)在140个循环后保持相同的速率,在2400 mA g(-1)下的速率能力为538.8 mAh g(-1)。这种出色的性能归因于纳米晶体的优越性,从而缩短了Li +扩散路径。通过实验测量和结构分析研究了这种混合阳极材料的机理。结果表明,在第一次放电时,其结构可以缓冲锂化/去锂化过程中发生的体积变化的MNM纳米晶体微球经历了四个阶段:阳离子空位中的Li +插入,尖晶石-岩盐转变,Li +嵌入Li1 0.75 + xFe2O3纳米晶体,以及在纳米晶体边界周围的界面Li存储。在第二个充电/放电循环中和之后,只有后两个阶段是可逆的,表现出具有超级锂存储能力的电池超级电容器的混合性能。

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