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Three-dimensional macroporous CNTs microspheres highly loaded with NiCo2O4 hollow nanospheres showing excellent lithium-ion storage performances

机译:用NicO2O4中空纳米球高负荷的三维大孔CNT微球,显示出优异的锂离子储存性能

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Three-dimensional macroporous carbon nanotubes microspheres highly loaded with phase-pure NiCo2O4 hollow nanospheres are synthesized by the spray pyrolysis process and are characterized for potential use in lithium-ion batteries. Polystyrene nanobead template and the nanoscale Kirkendall diffusion process are first combined and are applied to the spray pyrolysis process to form macroporous NiCo2O4/carbon nanotubes composite microspheres with extremely high rate performance as anode materials for lithium-ion batteries. Metallic NiCo2/carbon nanotubes composite microspheresdformed as intermediate products-are transformed into composite microspheres of phase-pure NiCo2O4 hollow nanospheres and carbon nanotubes by the nanoscale Kirkendall diffusion process. The mean size of the hollow NiCo2O4 nanospheres decorated on the carbon nanotubes backbone is 28 nm. The macroporous NiCo2O4/carbon nanotubes composite microspheres have discharge capacities of 840, 748, 677, 591, 514, 451, 391, 337, and 289 mA h g(-1) at current densities of 0.5, 1, 2, 5, 10, 15, 20, 25, and 30 A g(-1), respectively. The discharge capacity of the macroporous NiCo2O4/carbon nanotubes microspheres for the 500th cycle at a current density of 3 A g(-1) is 572 mA h g(-1). The uniquely structured hollow NiCo2O4 nanosphere/carbon nanotubes composite microspheres have superior cycling and rate performances for lithium-ion storage. (c) 2017 Elsevier Ltd. All rights reserved.
机译:通过喷雾热解过程合成高负荷的三维大孔碳纳米管微球,并通过喷雾热解过程合成,其特征在于锂离子电池的潜在用途。第一组合聚苯乙烯纳米帽模板和纳米级Kirkendall扩散工艺,并施加到喷雾热解过程中,以形成具有极高速率性能的大孔NiCO 2 O 4 /碳纳米管复合微球作为锂离子电池的阳极材料。金属NiCO2 /碳纳米管复合微球作为中间产物 - 通过纳米级Kirkendall扩散方法转化为相纯NiCO 2 O 4中空纳米球和碳纳米管的复合微球。在碳纳米管骨架上装饰的空心NiCO2O4纳米球的平均尺寸为28nm。大孔NiCO2O4 /碳纳米管复合微球的放电容量为840,748,677,591,514,451,391,337和289 mA Hg(-1),在0.5,1,2,5,10的电流密度下,图15,20,25和30Ag(-1)分别。大孔NiCO2O4 /碳纳米管的放电容量在3Ag(-1)的电流密度为5 5次循环的微球是572mA H g(-1)。唯一结构化的空心NiCO2O4纳米晶纳米管复合微球具有优异的循环和锂离子储存的速率性能。 (c)2017 Elsevier Ltd.保留所有权利。

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