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研究花状 MoS2 中电子态和输运性质的第一步:将实验研究与计算相结合。

First step to investigate nature of electronic states and transport in flower-like MoS2: Combining experimental studies with computational calculations.

机构信息

School of Technology, Pandit Deendayal Petroleum University, Gandhinagar, 382007, India.

Inorganic Chemistry Laboratory, University of Oxford, South Parks Road, Oxford OX1 3QR, United Kingdom.

出版信息

Sci Rep. 2016 Sep 12;6:32690. doi: 10.1038/srep32690.

Abstract

In the present paper, the nature of electronic states and transport properties of nanostructured flower-like molybdenum disulphide grown by hydrothermal route has been studied. The band structure, electronic nature of charge, thermodynamics and the limit of phonon scattering through density functional theory (DFT) has also been studied. The band tail states, dynamics of trap states and transport of carriers was investigated through intensive impedance spectroscopy analysis. The direct fingerprint of density and band tail state is analyzed from the capacitance plot as capacitance reflects the capability of a semiconductor to accept or release the charge carriers with a corresponding change in its Fermi potential levels. A recently introduced infrared photo-carrier radiometry and density functional perturbation theory (DFPT) techniques have been used to determine the temperature dependence of carrier mobility in flower type-MoS2. The present study illustrates that a large amount of trapped charges leads to an underestimation of the measured effective mobility and the potential of the material. Thus, a continuous engineering effort is required to improve the quality of fabricated nanostructures for its potential applications.

摘要

本文通过水热法研究了纳米结构花状二硫化钼的电子态和输运性质。还通过密度泛函理论(DFT)研究了能带结构、电荷的电子性质、热力学和声子散射的极限。通过深入的阻抗谱分析研究了带尾态、陷阱态动力学和载流子输运。从电容图中分析了密度和带尾态的直接特征,因为电容反映了半导体接受或释放电荷载流子的能力,以及其费米势水平的相应变化。最近引入的红外光载流子辐射测量法和密度泛函微扰理论(DFPT)技术已用于确定花型-MoS2 中载流子迁移率随温度的变化。本研究表明,大量的俘获电荷导致对测量有效迁移率和材料势的低估。因此,需要进行持续的工程努力来提高所制造的纳米结构的质量,以实现其潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e613/5018888/2c76ba51a101/srep32690-f1.jpg

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