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Surface functionalization of the honeycomb structure of zinc antimonide (ZnSb) monolayer: A first-Principles study

机译:锌锑苷酸(ZnSB)单层蜂窝状结构的表面官能化:第一原理研究

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摘要

Structural, electronic, optic and vibrational properties of Zinc antimonide (ZnSb) monolayers and their func-tionalized (semi-fluorinated and fully chlorinated) structures are investigated by means of the first-principles calculations. The phonon dispersion curves reveal the presence of imaginary frequencies and thus confirm the dynamical instability of ZnSb monolayer. The calculated electronic band structure corroborates the metallic character with fully-relativistic calculations. Moreover, we analyze the surface functionalization effect on the structural, vibrational, and electronic properties of the pristine ZnSb monolayer. The semi-fluorinated and fully-chlorinated ZnSb monolayers are shown to be dynamically stable in contrast to the ZnSb monolayer. At the same time, semi-fluorination and fully-chlorination of ZnSb monolayer could effectively modulate the metallic elec-tronic properties of pristine ZnSb. In addition, a magnetic metal to a nonmagnetic semiconductor transition with a band gap of 1 eV is achieved via fluorination, whereas a transition to a semiconducting state with 1.4 eV band gap is found via chlorination of the ZnSb monolayer. According to the optical properties analysis, the first ab-sorption peaks of the fluorinated-and chlorinated-ZnSb monolayers along the in-plane polarization are placed in the infrared range of spectrum, while they are in the middle ultraviolet for the out-of-plane polarization. Interestingly, the optically anisotropic behavior of these novel monolayers along the in-plane polarizations is highly desirable for design of polarization-sensitive photodetectors. The results of the calculations clearly proved that the tunable electronic properties of the ZnSb monolayer can be realized by chemical functionalization for application in the next generation nanoelectronic devices.
机译:通过第一原理计算研究了锌锑苷酸(ZnSB)单层和它们的菌株(半氟化和全氯化)结构的结构,电子,光学和振动性质。声子色散曲线揭示了虚数的存在,从而确认ZnSB单层的动态不稳定性。计算出的电子频带结构具有完全相对论的计算的金属特征。此外,我们分析了对原始ZnSB单层的结构,振动和电子性质的表面官能化影响。与ZnSB单层相比,半氟化和全氯化ZnSB单层显示为动态稳定。同时,ZnSB单层的半氟化和全氯化可以有效地调节原始ZnSB的金属电型性能。另外,通过氟化实现具有1eV的带隙的非磁性半导体过渡的磁性金属,而通过ZnSb单层的氯化发现与1.4eV带隙的半导体状态的过渡。根据光学性质分析,沿着平面偏振的氟化和氯化ZnSb单层的第一Ab吸附峰被放置在红外光谱范围内,而它们位于中间紫外线中的紫外线。平面极化。有趣的是,这些新型单层沿着面内偏振的光学各向异性行为非常希望用于偏振敏感光电探测器的设计。计算结果清楚地证明了ZnSB单层的可调谐电子性质可以通过化学官能化来实现在下一代纳米电子器件中的应用。

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