Tripathi Ravi P N, Gao Jie, Yang Xiaodong
Department of Mechanical and Aerospace Engineering, Missouri University of Science and Technology, Rolla, MO, 65409, USA.
Department of Mechanical Engineering, Stony Brook University, Stony Brook, NY, 11794, USA.
Sci Rep. 2021 Nov 9;11(1):22002. doi: 10.1038/s41598-021-01542-6.
Multi-element two-dimensional (2D) materials hold great promise in the context of tailoring the physical and chemical properties of the materials via stoichiometric engineering. However, the rational and controllable synthesis of complex 2D materials remains a challenge. Herein, we demonstrate the preparation of large-area thin quaternary 2D material flakes via mechanical exfoliation from a naturally occurring bulk crystal named gillulyite. Furthermore, the anisotropic linear and nonlinear optical properties including anisotropic Raman scattering, linear dichroism, and anisotropic third-harmonic generation (THG) of the exfoliated gillulyite flakes are investigated. The observed highly anisotropic optical properties originate from the reduced in-plane crystal symmetry. Additionally, the third-order nonlinear susceptibility of gillulyite crystal is retrieved from the measured thickness-dependent THG emission. We anticipate that the demonstrated strong anisotropic linear and nonlinear optical responses of gillulyite crystal will facilitate the better understanding of light-matter interaction in quaternary 2D materials and its implications in technological innovations such as photodetectors, frequency modulators, nonlinear optical signal processors, and solar cell applications.
通过化学计量工程来定制材料的物理和化学性质,多元素二维(2D)材料在这方面具有巨大潜力。然而,复杂二维材料的合理且可控合成仍然是一项挑战。在此,我们展示了通过从一种名为硅硼镁铝石的天然块状晶体进行机械剥离来制备大面积薄的四元二维材料薄片。此外,还研究了剥离后的硅硼镁铝石薄片的各向异性线性和非线性光学性质,包括各向异性拉曼散射、线性二向色性和各向异性三次谐波产生(THG)。观察到的高度各向异性光学性质源于平面内晶体对称性的降低。此外,从测量的与厚度相关的THG发射中获取了硅硼镁铝石晶体的三阶非线性极化率。我们预计,所展示的硅硼镁铝石晶体强烈的各向异性线性和非线性光学响应将有助于更好地理解四元二维材料中的光与物质相互作用及其在诸如光电探测器、频率调制器、非线性光学信号处理器和太阳能电池应用等技术创新中的意义。