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Resolving the optical anisotropy of low-symmetry 2D materials

机译:解决low-symmetry的光学各向异性二维材料

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Optical anisotropy is one of the most fundamental physical characteristics of emerging low-symmetry two-dimensional (2D) materials. It provides abundant structural information and is crucial for creating diverse nanoscale devices. Here, we have proposed an azimuth-resolved microscopic approach to directly resolve the normalized optical difference along two orthogonal directions at normal incidence. The differential principle ensures that the approach is only sensitive to anisotropic samples and immune to isotropic materials. We studied the optical anisotropy of bare and encapsulated black phosphorus (BP) and unveiled the interference effect on optical anisotropy, which is critical for practical applications in optical and optoelectronic devices. A multi-phase model based on the scattering matrix method was developed to account for the interference effect and then the crystallographic directions were unambiguously determined. Our result also suggests that the optical anisotropy is a probe to measure the thickness with monolayer resolution. Furthermore, the optical anisotropy of rhenium disulfide (ReS2), another class of anisotropic 2D materials, with a 1T distorted crystal structure, was investigated, which demonstrates that our approach is suitable for other anisotropic 2D materials. This technique is ideal for optical anisotropy characterization and will inspire future efforts in BP and related anisotropic 2D nanomaterials for engineering new conceptual nanodevices.
机译:光学各向异性是最基本的新兴low-symmetry的物理特征二维(2 d)材料。丰富的结构信息和是至关重要的用于创建不同的纳米设备。提出了一个azimuth-resolved微观直接解决规范化方法光沿着两个正交的区别在垂直入射方向。确保方法只是原则对各向异性样品和免疫各向同性材料。各向异性光和封装的黑色磷(BP)和公布了干扰影响光学各向异性,这是至关重要的在光学和实际应用光电设备。散射矩阵方法被开发然后考虑干扰影响晶体方向明确确定。光学各向异性探针测量与单层厚度决议。二硫化铼的光学各向异性(它),另一类各向异性2 d材料,1 t扭曲的晶体结构,调查,表明我们的吗方法适用于其他各向异性2 d材料。各向异性特征,并将激励在英国石油公司和相关的各向异性2 d未来努力纳米材料工程的新概念nanodevices。

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