论文标题

直接测量折叠角和应变矢量在原子上薄WS $ _2 $使用第二次谐波生成

Direct Measurement of Folding Angle and Strain Vector in Atomically thin WS$_2$ using Second Harmonic Generation

论文作者

Khan, Ahmed Raza, Liu, Boqing, Ma, Wendi, Zhang, Linglong, Sharma, Ankur, Zhu, Yi, Lü, Tieyu, Lu, Yuerui

论文摘要

诸如本地应变工程和折叠之类的结构工程技术对2D材料的关键光电特性提供了功能控制。准确监测局部应变矢量(应变振幅和方向)和2D材料中的折叠角对于优化设备性能很重要。传统上,准确测量应变振幅和方向需要多种工具的综合用法,例如原子力显微镜(AFM),电子显微镜,拉曼光谱等。在这里,我们证明了单个工具的使用,单个工具,极化依赖于二次谐波(SHG)成像,以确定折叠角度和折叠量较薄的折叠率较薄,并在pector上进行了处理。我们发现,由于来自单个折叠层的SH波向量的向量叠加,折叠角为600的Trilayer WS2折叠显示了9倍SHG增强。发现依赖于应变的SHG淬灭和增强,并平行于垂直于压缩应变载体的方向。但是,尽管应变角变化,但总SHG仍然恒定,这使我们能够使用光弹性方法准确地确定局部应变矢量。我们还证明了带状诱导的过渡(C峰)可以高度增强SHG,这可以通过应变显着调节。我们的结果将为启用TMD在非线性光学设备中的新型应用铺平道路。

Structural engineering techniques such as local strain engineering and folding provide functional control over critical optoelectronic properties of 2D materials. Accurate monitoring of local strain vector (both strain amplitude and direction) and folding angle in 2D materials is important to optimize the device performance. Conventionally, the accurate measurement of both strain amplitude and direction requires the combined usage of multiple tools, such as atomic force microscopy (AFM), electron microscopy, Raman spectroscopy, etc. Here, we demonstrated the usage of a single tool, polarization-dependent second harmonic generation (SHG) imaging, to determine the folding angle and strain vector accurately in atomically thin tungsten disulfide (WS2). We find that trilayer WS2 folds with folding angle of 600 show 9 times SHG enhancement due to vector superposition of SH wave vectors coming from the individual folding layers. Strain dependent SHG quenching and enhancement is found parallel and perpendicular respectively to the direction of the compressive strain vector. However, despite a variation in strain angle, the total SHG remains constant which allows us to determine the local strain vector accurately using photoelastic approach. We also demonstrate that band-nesting induced transition (C peak) can highly enhance SHG, which can be significantly modulated by strain. Our results would pave the way to enable novel applications of the TMDs in nonlinear optical device.

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