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Ah initio density functional theory investigation of Li-intercalated zinc oxide nanotube bundles

机译:锂嵌入氧化锌纳米管束的从头算密度泛函理论研究

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We have investigated the energetic, and geometric and electronic structure of Li-intercalated (5,5) zinc oxide nanotube (ZnONT) bundles via density functional theory as implemented in the code WIEN2k. Our results showed that the most prominent effect of Li intercalation on the electronic band structure is a shift of the Fermi energy which occurs as a result of charge transfer from lithium to the ZnONTs. All the Li-intercalated (5,5) ZnONT bundles are predicted to be metallic representing a substantial change in electronic properties relative to the undoped bundle, which is a wide band gap semiconductor. Both inside of the nanotube and the interstitial spaces are susceptible for intercalation. The present calculations suggest that the single-walled zinc oxide nanotube (SwZnONT) bundle is a promising candidate for the anode material in battery applications.
机译:我们已经通过代码WIEN2k中实现的密度泛函理论研究了嵌入锂的(5,5)氧化锌纳米管(ZnONT)束的能量,几何和电子结构。我们的结果表明,Li嵌入对电子能带结构的最显着影响是费米能量的转移,这是由于电荷从锂转移到ZnONTs而引起的。预计所有嵌入Li的(5,5)ZnONT束都是金属的,相对于未掺杂的束(宽带隙半导体),这表示电子性质发生了实质性变化。纳米管内部和间隙空间都易于插入。目前的计算表明,单壁氧化锌纳米管(SwZnONT)束是电池应用中阳极材料的有希望的候选者。

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