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Assessing Effects of Near-Field Synergistic Light Absorption on Ordered Inorganic Phototropic Growth

机译:评估近场协同光吸收对有序无机光致生长的影响

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摘要

We report herein that synergistic light absorption in the optical near-field enables nanoscale self-organization during inorganic phototropic growth. Se-Te was grown electrochemically under illumination from an incoherent, unstructured light source in geometrically constrained, wavelength scale areas. Despite the limited dimensions, with as few as two discrete features produced in a single sub-micron dimension, the deposit morphology exhibited defined order and anisotropy. Computer modeling analysis of light absorption in simulated structures revealed a synergy wherein light capture in a nanoscale feature was enhanced by the presence of additional adjacent features, with the synergistic effect originating predominantly from nearest neighbor contributions. Modeling moreover indicated that synergistic absorption is produced by scattering of the incident illumination by individual nanoscale features, leading to a local increase in the near-field intensity and consequently increasing the absorption in neighboring features. The interplay between these optical processes establishes the basis for spontaneous order generation via inorganic phototropic growth.
机译:我们在此报告,光学近场中的协同光吸收使纳米级自组织能够在无机光蒸发生长期间能够。在几何限制的波长尺度区域中从非相干,非结构化光源照射电化学地生长。尽管尺寸有限,但由于单个亚微米尺寸中产生的两个离散特征,沉积形态表现出明确的秩序和各向异性。仿真结构中光吸收的计算机建模分析显示了一种协同作用,其中通过存在额外的相邻特征来增强纳米级特征中的光捕获,具有源自最近邻贡献的协同效应。此外,建模表明,通过单个纳米级特征散射事件照射散射的协同吸收,导致近场强度的局部增加,从而增加了相邻特征的吸收。这些光学过程之间的相互作用是通过无机光致生长的自发阶产生的基础。

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  • 来源
    《Journal of the American Chemical Society》 |2021年第10期|3693-3696|共4页
  • 作者单位

    Division of Chemistry and Chemical Engineering California Institute of Technology Pasadena California 91125 United States;

    Division of Chemistry and Chemical Engineering California Institute of Technology Pasadena California 91125 United States;

    Division of Engineering and Applied Sciences California Institute of Technology Pasadena California 91125 United States;

    Division of Engineering and Applied Sciences California Institute of Technology Pasadena California 91125 United States;

    Division of Chemistry and Chemical Engineering California Institute of Technology Pasadena California 91125 United States;

    Division of Chemistry and Chemical Engineering California Institute of Technology Pasadena California 91125 United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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