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Zn(x)Cd(1-x)Se 纳米多足结构:可调带隙的合成与第一性原理计算。

Zn(x)Cd(1-x)Se nanomultipods with tunable band gaps: synthesis and first-principles calculations.

机构信息

Key Laboratory for Thin Film and Microfabrication Technology of Ministry of Education, Institute of Micro/Nano Science and Technology, Shanghai Jiao Tong University, Shanghai, 200240, People's Republic of China.

出版信息

Nanotechnology. 2013 Jun 14;24(23):235706. doi: 10.1088/0957-4484/24/23/235706. Epub 2013 May 14.

Abstract

In this paper, we demonstrate that ZnxCd1-xSe nanomultipods can be synthesized via a facile and nontoxic solution-based method. Interesting aspects of composition, morphology and optical properties were deeply explored. The value of Zn/(Zn+Cd) could be altered across the entire range from 0.08 to 0.86 by varying the ratio of cation precursor contents. The band gap energy could be linearly tuned from 1.88 to 2.48 eV with respect to the value of Zn/(Zn+Cd). The experiment also showed that oleylamine played a dominant role in the formation of multipod structure. A possible growth mechanism was further suggested. First-principles calculations of band gap energy and density of states in the Vienna ab initio simulation package code were performed to verify the experimental variation tendency of the band gap. Computational results indicated that dissimilarities of electronic band structures and orbital constitutions determined the tunable band gap of the as-synthesized nanomultipod, which might be promising for versatile applications in relevant areas of solar cells, biomedicine, sensors, catalysts and so on.

摘要

本文通过一种简便无毒的溶液法合成了 ZnxCd1-xSe 纳米多足。深入探讨了组成、形貌和光学性质等有趣的方面。通过改变阳离子前体含量的比例,可以将 Zn/(Zn+Cd) 的值在 0.08 到 0.86 的整个范围内进行调整。带隙能量可以从 1.88 eV 线性调谐到 2.48 eV,与 Zn/(Zn+Cd)的值相对应。实验还表明,油胺在多足结构的形成中起主导作用。进一步提出了可能的生长机制。使用维也纳从头计算模拟包代码进行了能带隙和态密度的第一性原理计算,以验证能带隙的实验变化趋势。计算结果表明,电子能带结构和轨道构成的差异决定了所合成的纳米多足的可调带隙,这可能在太阳能电池、生物医学、传感器、催化剂等相关领域的多种应用中具有广阔的前景。

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