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应变下多层黑磷烯的拉曼活性。

Raman Activity of Multilayer Phosphorene under Strain.

作者信息

Tokár Kamil, Brndiar Ján, Štich Ivan

机构信息

Center for Computational Materials Science, Institute of Physics, Slovak Academy of Sciences, 845 11 Bratislava, Slovakia.

Institute of Informatics, Slovak Academy of Sciences, 845 07 Bratislava, Slovakia.

出版信息

ACS Omega. 2019 Dec 18;4(27):22418-22425. doi: 10.1021/acsomega.9b02969. eCollection 2019 Dec 31.

Abstract

Using computational tools, we study the behavior of activities of lattice vibrational Raman modes in few-layered phosphorene of up to four layers subjected to a uniaxial strain of -2 to +6% applied in the armchair and zigzag directions. We study both high- and low-frequency modes and find very appreciable frequency shifts in response to the applied strain of up to ≈20 cm. The Raman activities are characterized by A /A activity ratios, which provide very meaningful characteristics of functionalization via layer- and strain-engineering. The ratios exhibit a pronounced vibrational anisotropy, namely a linear increase with the applied armchair strain and a highly nonlinear behavior with a strong drop of the ratio with the strain applied along the zigzag direction. For the low-frequency modes, which are Raman active exclusively in few-layered systems, we find the breathing interlayer modes of primary importance due to their strong activities. For few-layered structures with a thickness ≥4, a splitting of the breathing modes into a pair of modes with complementary activities is found, with the lower frequency mode being strain activated. Our calculated database of results contains full angular information on activities of both low- and high-frequency Raman modes. These results, free of experimental complexities, such as dielectric embedding, defects, and size and orientation of the flakes, provide a convenient benchmark for experiments. Combined with high-spatial-resolution Raman scattering experiments, our calculated results will aid in the understanding of the complicated inhomogeneous strain distributions in few-layered phosphorene or the manufacture of materials with desired electronic properties via strain- or layer-engineering.

摘要

利用计算工具,我们研究了在扶手椅方向和锯齿方向施加-2%至+6%单轴应变的多达四层的少层磷烯中晶格振动拉曼模式的活动行为。我们研究了高频和低频模式,发现响应于施加的应变,频率偏移非常明显,高达约20 cm。拉曼活动通过A /A 活动比率来表征,该比率通过层工程和应变工程提供了非常有意义的功能化特征。这些比率表现出明显的振动各向异性,即在扶手椅方向施加应变时呈线性增加,而在锯齿方向施加应变时比率急剧下降,呈现出高度非线性行为。对于仅在少层系统中具有拉曼活性的低频模式,我们发现呼吸层间模式由于其强烈的活性而最为重要。对于厚度≥4的少层结构,发现呼吸模式分裂为一对具有互补活性的模式,其中低频模式是应变激活的。我们计算的结果数据库包含低频和高频拉曼模式活动的完整角度信息。这些结果没有实验复杂性,如介电嵌入、缺陷以及薄片的尺寸和取向,为实验提供了方便的基准。结合高空间分辨率拉曼散射实验,我们的计算结果将有助于理解少层磷烯中复杂的不均匀应变分布,或通过应变工程或层工程制造具有所需电子特性的材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9a46/6941176/d17683280c59/ao9b02969_0002.jpg

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