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Preparation and capacitance performance of nitrided lithium titanate nanoarrays

机译:氮化钛酸锂纳米阵列的制备及电容性能

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Nitrided lithium titanate (N-Li4Ti5O12) nanoarrays with nanowire and nanotube structures were designed as the electrode materials of lithium-ion supercapacitor for electrochemical energy storage. Two types of TiO2 nanoarrays were used as the precursor which involved TiO2 nanowire array prepared by hydrothermal process and TiO2 nanotube array prepared by anodization process. Li4Ti5O12 nanoarrays were formed through hydrothermal reaction or sonochemical reaction of TiO2 nanoarrays with lithium hydroxide and then calcination treatment process. Finally, N-Li4Ti5O12 nanoarrays were formed through nitriding treatment of Li4Ti5O12 using ammonia as nitrogen source. The electroactive N-Li4Ti5O12 nano wire array and nanotube array exhibited the specific capacitance of 607.2 F g(-1) and 814.4 F g(-1) at a current density of 1 A g(-1), respectively. The corresponding capacitance retention was determined to be 92.1% and 94.2% after 1000 cycles at high current density of 5 A g(-1). The corresponding capacitance still kept 182.9 and 352.1 F g(-1) at much higher current density of 20 A g(-1), presenting reasonable rate capability for N-Li4Ti5O12 nanoarrays. The improved capacitance performance of N-Li4Ti5O12 nanotube array was ascribed to the more amount of TiN and more accessible nanotube surface area, which contributed to the improved conductivity and fast diffusion of electrolyte ions on the surface of electrode. Both N-Li4Ti5O12 nanowire array and nanotube array with well-aligned integrative structure exhibited an excellent cycling stability during continuous charge/discharge process. Well-designed N-Li4Ti5O12 nanoarrays with high capacitance, good cycling stability and rate capability presented the promising application as feasible electrode materials of lithium-ion supercapacitors for the energy storage. (C) 2016 Elsevier Ltd and Techna Group S.r.l. All rights reserved.
机译:设计了具有纳米线和纳米管结构的氮化钛酸锂(N-Li4Ti5O12)纳米阵列作为锂离子超级电容器的电化学储能电极材料。以两种类型的TiO2纳米阵列为前驱体,分别涉及水热法制备的TiO2纳米线阵列和阳极氧化法制备的TiO2纳米管阵列。通过TiO2纳米阵列与氢氧化锂的水热反应或声化学反应,然后煅烧处理工艺形成Li4Ti5O12纳米阵列。最后,以氨为氮源对Li4Ti5O12进行氮化处理,形成了N-Li4Ti5O12纳米阵列。电活性N-Li4Ti5O12纳米线阵列和纳米管阵列在1 A g(-1)的电流密度下分别显示出607.2 F g(-1)和814.4 F g(-1)的比电容。在5 A g(-1)的高电流密度下1000次循环后,相应的电容保持率确定为92.1%和94.2%。在更高的20 A g(-1)电流密度下,相应的电容仍保持182.9和352.1 F g(-1),为N-Li4Ti5O12纳米阵列提供了合理的速率能力。 N-Li4Ti5O12纳米管阵列的改善的电容性能归因于TiN的数量更多和纳米管表面积更大,这有助于提高电导率和电解质离子在电极表面的快速扩散。具有良好排列的整体结构的N-Li4Ti5O12纳米线阵列和纳米管阵列在连续充电/放电过程中均表现出出色的循环稳定性。设计良好的N-Li4Ti5O12纳米阵列具有高电容,良好的循环稳定性和倍率性能,作为锂离子超级电容器储能的可行电极材料具有广阔的应用前景。 (C)2016 Elsevier Ltd和Techna Group S.r.l.版权所有。

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