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Controlled synthesis of series NixCo3-xO4 products: Morphological evolution towards quasi-single-crystal structure for high-performance and stable lithium-ion batteries

机译:NixCo3-xO4系列产品的受控合成:高性能且稳定的锂离子电池向准单晶结构的形态演变

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摘要

Transition metal oxides are very promising alternative anode materials for high-performance lithium-ion batteries (LIBs). However, their conversion reactions and concomitant volume expansion cause the pulverization, leading to poor cycling stability, which limit their applications. Here, we present the quasi-single-crystal NixCo3-xO4 hexagonal microtube (QNHM) composed of continuously twinned single crystal submicron-cubes as anode materials for LIBs with high energy density and long cycle life. At the current density of 0.8 A g−1, it can deliver a high discharge capacities of 1470 mAh g−1 over 100 cycles (105% of the 2nd cycle) and 590 mAh g−1 even after 1000 cycles. To better understand what underlying factors lead our QNHMs to achieve excellent electrochemical performance, a series of NixCo3-xO4 products with systematic shape evolution from spherical to polyhedral, and cubic particles as well as circular microtubes consisted of spheres and square microtubes composed of polyhedra have been synthesized. The excellent electrochemical performance of QNHMs is attributed to the unique stable quasi-single-crystal structure, which can both provide efficient electrical transport pathway and suppress the electrode pulverization. It is important to note that such quasi-single-crystal structure would be helpful to explore other high-energy lithium storage materials based on alloying or conversion reactions.
机译:过渡金属氧化物是用于高性能锂离子电池(LIB)的非常有希望的替代阳极材料。然而,它们的转化反应和伴随的体积膨胀引起粉碎,导致差的循环稳定性,这限制了它们的应用。在这里,我们介绍了准连续单晶亚微米立方体组成的准单晶NixCo3-xO4六角形微管(QNHM),作为高能量密度和长循环寿命的LIB的阳极材料。在电流密度为0.8 A g -1 时,它可以在100个周期(第二个周期的105%)中提供1470 mAh g -1 的高放电容量,并且即使经过1000次循环,仍达到590 mAh g -1 。为了更好地了解是什么因素导致我们的QNHM获得出色的电化学性能,已经开发了一系列NixCo3-xO4产品,这些产品具有从球形到多面体的系统形状演变,立方颗粒以及由球形和多面体组成的方形微管组成的圆形微管已经被开发出来。合成的。 QNHMs的出色电化学性能归因于独特的稳定准单晶结构,既可以提供有效的电传输路径,又可以抑制电极粉碎。重要的是要注意,这种准单晶结构将有助于探索基于合金化或转化反应的其他高能锂存储材料。

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