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纤锌矿型和闪锌矿型氮化镓晶体的力学、热力学及电学性质

Mechanical, Thermodynamic and Electronic Properties of Wurtzite and Zinc-Blende GaN Crystals.

作者信息

Qin Hongbo, Luan Xinghe, Feng Chuang, Yang Daoguo, Zhang Guoqi

机构信息

School of Mechanical and Electronic Engineering, Guilin University of Electronic Technology, Guilin 541004, China.

EEMCS Faculty, Delft University of Technology, 2628 Delft, The Netherlands.

出版信息

Materials (Basel). 2017 Dec 12;10(12):1419. doi: 10.3390/ma10121419.

Abstract

For the limitation of experimental methods in crystal characterization, in this study, the mechanical, thermodynamic and electronic properties of wurtzite and zinc-blende GaN crystals were investigated by first-principles calculations based on density functional theory. Firstly, bulk moduli, shear moduli, elastic moduli and Poisson's ratios of the two GaN polycrystals were calculated using Voigt and Hill approximations, and the results show wurtzite GaN has larger shear and elastic moduli and exhibits more obvious brittleness. Moreover, both wurtzite and zinc-blende GaN monocrystals present obvious mechanical anisotropic behavior. For wurtzite GaN monocrystal, the maximum and minimum elastic moduli are located at orientations [001] and <111>, respectively, while they are in the orientations <111> and <100> for zinc-blende GaN monocrystal, respectively. Compared to the elastic modulus, the shear moduli of the two GaN monocrystals have completely opposite direction dependences. However, different from elastic and shear moduli, the bulk moduli of the two monocrystals are nearly isotropic, especially for the zinc-blende GaN. Besides, in the wurtzite GaN, Poisson's ratios at the planes containing [001] axis are anisotropic, and the maximum value is 0.31 which is located at the directions vertical to [001] axis. For zinc-blende GaN, Poisson's ratios at planes (100) and (111) are isotropic, while the Poisson's ratio at plane (110) exhibits dramatically anisotropic phenomenon. Additionally, the calculated Debye temperatures of wurtzite and zinc-blende GaN are 641.8 and 620.2 K, respectively. At 300 K, the calculated heat capacities of wurtzite and zinc-blende are 33.6 and 33.5 J mol K, respectively. Finally, the band gap is located at the G point for the two crystals, and the band gaps of wurtzite and zinc-blende GaN are 3.62 eV and 3.06 eV, respectively. At the G point, the lowest energy of conduction band in the wurtzite GaN is larger, resulting in a wider band gap. Densities of states in the orbital hybridization between Ga and N atoms of wurtzite GaN are much higher, indicating more electrons participate in forming Ga-N ionic bonds in the wurtzite GaN.

摘要

由于晶体表征实验方法的局限性,本研究基于密度泛函理论,通过第一性原理计算研究了纤锌矿型和闪锌矿型GaN晶体的力学、热力学和电子性质。首先,使用Voigt和Hill近似计算了两种GaN多晶的体模量、剪切模量、弹性模量和泊松比,结果表明纤锌矿型GaN具有更大的剪切模量和弹性模量,表现出更明显的脆性。此外,纤锌矿型和闪锌矿型GaN单晶均呈现明显的力学各向异性行为。对于纤锌矿型GaN单晶,最大和最小弹性模量分别位于[001]和<111>方向,而对于闪锌矿型GaN单晶,它们分别位于<111>和<100>方向。与弹性模量相比,两种GaN单晶的剪切模量具有完全相反的方向依赖性。然而,与弹性模量和剪切模量不同,两种单晶的体模量几乎是各向同性的,尤其是闪锌矿型GaN。此外,在纤锌矿型GaN中,包含[001]轴的平面上的泊松比是各向异性的,最大值为0.31,位于垂直于[001]轴的方向。对于闪锌矿型GaN,(100)和(111)平面上的泊松比是各向同性的,而(110)平面上的泊松比呈现出显著的各向异性现象。此外,计算得到的纤锌矿型和闪锌矿型GaN的德拜温度分别为641.8和620.2 K。在300 K时,计算得到的纤锌矿型和闪锌矿型的热容分别为33.6和33.5 J mol K。最后,两种晶体的带隙均位于G点,纤锌矿型和闪锌矿型GaN的带隙分别为3.62 eV和3.06 eV。在G点,纤锌矿型GaN导带的最低能量更大,导致带隙更宽。纤锌矿型GaN中Ga和N原子之间轨道杂化的态密度更高,表明在纤锌矿型GaN中有更多电子参与形成Ga-N离子键。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d570/5744354/68cee30cbe1a/materials-10-01419-g001.jpg

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