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首页> 外文期刊>AIP Advances >Strain-dependent electronic and optical properties of boron-phosphide and germanium-carbide hetero-bilayer: A first-principles study
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Strain-dependent electronic and optical properties of boron-phosphide and germanium-carbide hetero-bilayer: A first-principles study

机译:硼磷化硼和碳化锗杂交双层的应变依赖性电子和光学性质:第一原理研究

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Opto-electronic properties of boron phosphide–germanium carbide (BP/GeC), a new van der Walls hetero-bilayer (HBL) with all possible stacking patterns, are studied under the density functional theory originated first-principles. The dynamical and chemical stabilities of the hetero-bilayer are confirmed by phonon spectra and binding energy. Among the dynamically stable HBLs, HBL 1 has the lowest binding energy with the smallest interlayer spacing of about 3.442 ?. Both values and natures (indirect or direct) of the electronic band structure are highly responsive to the stacking patterns. We have found that HBL 1 is indirect, while HBL 2 and HBL 3 become a direct bandgap at the K high symmetry point. All HBLs show type-II band alignment. Both compressive and tensile biaxial strains on the electronic properties of HBLs have been considered. All the HBLs become a direct bandgap for the compressive strain at 4% and 6%. We have also presented the optical property calculations on the HBLs, namely, the complex dielectric function and absorption properties, showing unique optical properties with significant absorption (5 × 10sup5/sup cmsup?1/sup in HBL 2) in the whole solar spectra compared with their comprising monolayers. Moreover, the strain-dependent optical absorption coefficients with varying photon wavelengths are calculated and the maximum value is attained to be about 6.5 × 10sup5/sup cmsup?1/sup in HBL 2 at 4% compressive strain. Consequently, the optoelectronic properties we have explored in our proposed new hetero-bilayer systems can guide the experimental realization of the hetero-bilayers and effective use in the future photovoltaic applications.
机译:硼磷化锗碳化锗(BP / GEC)的光电性质,通过所有可能的堆叠模式进行了一种新的van der壁界面(HBL),在密度函数理论下,首先是一项原则。杂双层的动态和化学稳定性通过声子光谱和结合能确认。在动态稳定的HBL中,HBL1具有最低的粘合能量,具有约3.442的最小层间间距?。电子频带结构的值和自然(间接或直接)对堆叠模式非常敏感。我们已经发现HBL1是间接的,而HBL 2和HBL 3成为K高对称点的直接带隙。所有HBLS显示II型带对齐。已经考虑了HBLS的电子性质的压缩和拉伸双轴菌株。所有HBLS都成为压缩菌株的直接带隙,为4%和6%。我们还介绍了HBLS上的光学性质计算,即复杂的介电功能和吸收性能,显示出具有显着吸收的独特光学性能(5×10 5 cm 1 在整个太阳能光谱中,与包含单层的整个太阳能光谱。此外,计算具有不同光子波长的应变依赖性光学吸收系数,并且在4时,最大值达到约6.5×10 5℃/ sup> cm 1/pm> %压缩菌株。因此,我们在我们提出的新杂双层系统中探索的光电性能可以指导杂双层的实验性实现和在未来的光伏应用中有效使用。

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