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Atomic layer deposited-ZnO@3D-Ni-foam composite for Na-ion battery anode: A novel route for easy and efficient electrode preparation

机译:用于Na离子电池阳极的原子层沉积 - ZnO ZnO @ 3D-Ni-泡沫复合材料:一种简便高效电极制备的新途径

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摘要

The sluggish kinetics of relatively larger Na-ion still limits the performance of sodium-ion batteries (SIBs) as compared to lithium-ion batteries (LIBs). In this context, a novel route is introduced by coating a thin films of ZnO on a porous 3D Ni-foam scaffold by atomic layer deposition (ALD) for the first time and is used as a superior anode for SIBs without any post-modifications. The scanning electron microscopy along with transmission electron microscopy studies reveal that highly crystalline ZnO can be deposited on such complex 3D Ni-foam with excellent uniformity and conformality. A stable reversible capacity of similar to 65.1 mAh g(-1) up to 400 charge discharge cycles and the excellent rate capability in a wide current density range (30-1000 mA g(-1)) establish the potential of this composite prepared by a direct and relatively easier method of electrode fabrication. The predominant alloying-dealloying based reactions for Zn-based anode material is also established in SIBs by the post-cycling X-ray photoelectron spectroscopic analyses. The post-cycling analysis of these anodes also reveals the robust structure with good adhesion of the ALD grown films on Ni-foam. In addition, similar study on 2D substrate elucidates the extra advantages of this current strategy. This model efficient route can easily be extended and adopted for any other materials to further enhance the performance of SIBs in future.
机译:与锂离子电池(LIBS)相比,相对较大的Na离子的缓慢动力学仍然限制了钠离子电池(SIB)的性能。在这种情况下,通过首次通过原子层沉积(ALD)在多孔3D Ni-Fo-泡沫支架上涂覆ZnO的薄膜并将其用作SIBs的优异阳极,引入新的途径,而没有任何后修饰的SIBs。扫描电子显微镜以及透射电子显微镜研究表明,高度结晶的ZnO可以沉积在这种复合的3D Ni-泡沫上,具有优异的均匀性和保形性。稳定的可逆容量与65.1mahg(-1)相似,最高可达400个电荷放电循环和宽电流密度范围内的优异速率能力(30-1000 mA g(-1))建立了由此制备的该复合材料的潜力一种直接且相对容易的电极制造方法。通过后循环的X射线光电子光谱分析,在SIB上也建立了基于Zn的阳极材料的主要合金化的基于干预的反应。这些阳极的循环分析还揭示了良好的粘附性粘附在Ni-泡沫上的良好结构。此外,对2D衬底的类似研究阐明了该电流策略的额外优点。这种型号的高效路线可以很容易地扩展和采用任何其他材料,以进一步增强未来SIB的性能。

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