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Patterning GaSe by High-Powered Laser Beams

机译:由高功率激光束进行图案化Gase

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We report the high-powered laser modification of the chemical, physical, and structural properties of the two-dimensional (2D) van der Waals material GaSe. Our results show that contrary to expectations and previous reports, GaSe at the periphery of a high-power laser beam does not entirely decompose into Se and Ga_(2)O_(3). In contrast, we find unexpectedly that the Raman signal from GaSe gets amplified around regions where it was not expected to exist. Atomic force microscopy (AFM), dielectric force microscopy (DFM), scanning electron microscopy (SEM), and energy-dispersive X-ray spectroscopy (EDX) results show that laser irradiation induces the formation of nanoparticles. Our analyses demonstrate that, except for a fraction of Ga_(2)Se_(3), these nanoparticles still belong to the GaSe phase but possess different electrical and optical properties. These changes are evidenced in the increased Raman intensity attributed to the near-resonance conditions with the Raman excitation laser. The elemental analysis of nanoparticles shows that the relative selenium content increased to as much as 70% from a 50:50 value in stoichiometric GaSe. This elemental change is related to the formation of the Ga_(2)Se_(3) phase identified by Raman spectroscopy at some locations near the edge. Further, we exploit the localized high-power laser processing of GaSe to induce the formation of Ag–GaSe nanostructures by exposure to a solution of AgNO_(3). The selective reaction of AgNO_(3) with laser-irradiated GaSe gives rise to composite nanostructures that display photocatalytic activity originally absent in the pristine 2D material. The photocatalytic activity was investigated by the transformation of 4-nitrobenzenethiol to its amino and dimer forms detected in situ by Raman spectroscopy. This work improves the understanding of light–matter interaction in layered systems, offering an approach to the formation of laser-induced composites with added functionality.
机译:我们报告了二维(2D)van der WALS材料Gase的化学,物理和结构性能的高功率激光改性。我们的结果表明,与期望和先前的报道相反,高功率激光束的周边的Gase不完全分解为SE和GA_(2)O_(3)。相比之下,我们发现意外地发现来自Gase的拉曼信号在没有预期存在的区域周围被放大。原子力显微镜(AFM),介电力显微镜(DFM),扫描电子显微镜(SEM)和能量分散X射线光谱(EDX)结果表明激光照射诱导纳米颗粒的形成。我们的分析表明,除了Ga_(2)Se_(3)的一部分外,这些纳米颗粒仍然属于Gase阶段,但具有不同的电气和光学性质。这些变化在随着拉曼激励激光器的近共振条件增加的拉曼强度增加。纳米粒子的元素分析表明,在化学计量Gase的50:50值中,相对硒含量增加到高达70%。该元素变化与由拉曼光谱在边缘附近的某些位置处识别的GA_(2)SE_(3)阶段的形成有关。此外,我们利用Gase的局部大功率激光加工通过暴露于AgNO_(3)的溶液来诱导Ag-Gase纳米结构的形成。 AgNO_(3)与激光照射Gase的选择性反应产生了复合纳米结构,其显示最初在原始2D材料中不存在的光催化活性。通过拉曼光谱法通过4-硝基苯硫醇转化为其氨基和二聚体形式来研究光催化活性。这项工作改善了层分系统中的光物质相互作用的理解,提供了具有额外功能的激光诱导的复合材料的方法。

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