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Nanostructured amorphous gallium phosphide on silica for nonlinear and ultrafast nanophotonics

机译:用于非线性和超快纳米光源的二氧化硅上的纳米结构无定形磷化物

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摘要

Nanophotonics based on high refractive index dielectrics relies on appreciable contrast between the indices of designed nanostructures and their immediate surrounding, which can be achieved by the growth of thin films on low-index substrates. Here we propose the use of high index amorphous gallium phosphide (a-GaP), fabricated by radio-frequency sputter deposition, on top of a low refractive index glass substrate and thoroughly examine its nanophotonic properties. Spectral ellipsometry of the amorphous material demonstrates the optical properties to be considerably close to crystalline gallium phosphide (c-GaP), with low-loss transparency for wavelengths longer than 650 nm. When nanostructured into nanopatches, the second harmonic (SH) response of an individual a-GaP patch is characterized to be more than two orders of magnitude larger than the as-deposited unstructured film, with an anapole-like resonant behavior. Numerical simulations are in good agreement with the experimental results over a large spectral and geometrical range. Furthermore, by studying individual a-GaP nanopatches through non-degenerate pump-probe spectroscopy with sub-10 fs pulses, we find a more than 5% ultrafast modulation of the reflectivity that is accompanied by a slower decaying free carrier contribution, caused by absorption. Our investigations reveal a potential for a-GaP as an adequate inexpensive and CMOS-compatible material for nonlinear nanophotonic applications as well as for photocatalysis.
机译:基于高折射率电介质的纳米光电学依赖于所设计的纳米结构的指标与其立即周围之间的明显对比度,这可以通过在低指数衬底上的薄膜的生长来实现。在这里,我们提出了在低折射率玻璃基板的顶部上通过射频溅射沉积制造的高指数非晶镓磷化磷脂(A-Gap),并彻底检查其纳米光电性质。无定形材料的光谱椭圆形式表明光学性质可显着接近结晶镓磷化镓(C-Gap),具有比650nm长的波长的低损耗透明度。当纳米结构进入纳米分离时,单个A-GAP贴片的第二次谐波(SH)响应的特征在于比沉积的非结构化膜大超过两个数量级,具有脂肪样谐振行为。数值模拟与大谱和几何范围的实验结果吻合良好。此外,通过利用Sub-10 FS脉冲通过非简并泵浦探针光谱研究单个A-Gap纳米型,我们发现由吸收引起的衰减速度较慢的反射率的超快调制超过5%的超快调制。我们的调查揭示了一种用于非线性纳米光电应用以及光催化的适当廉价和CMOS兼容材料的差距。

著录项

  • 来源
    《Nanoscale Horizons》 |2020年第11期|共9页
  • 作者单位

    Chair in Hybrid Nanosystems Nanoinstitut Miinchen Fakultat fur Physik Ludwig-Maximilians-Universitat Munchen 80539 Munchen Germany.;

    Departamento de Fisica FCEN IFIBA-CONICET Universidad de Buenos Aires C1428EGA Buenos Aires Argentina;

    Chair in Hybrid Nanosystems Nanoinstitut Miinchen Fakultat fur Physik Ludwig-Maximilians-Universitat Munchen 80539 Munchen Germany.;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子物理学、原子物理学;工程材料学;
  • 关键词

  • 入库时间 2022-08-20 04:26:19

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