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Internal structure of metallic nanocrystals using coherent x-ray imaging.

机译:使用相干X射线成像的金属纳米晶体的内部结构。

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摘要

Gold nanocrystals are increasingly important for a wide range of potential applications in photonics, nanoelectronics, biological imaging, and biosensors. Although various synthesis methods for Au nanocrystals have been developed, most synthesis technique employ surfactants to control shape and/or size. However, we synthesized polyhedral shaped gold nanocrystals in the absence of any foreign catalysts so that we were able to avoid any influences of surfactants on the physical properties of the nanocrystals. We then used coherent diffractive imaging to investigate the nanoscale internal structure, shape, and lattice distortion of the Au nanocrystals and understand growth dynamics and suitability of the synthesis technique.;This is the first study of both curvature-induced strain under a locally rounded surface and the effect of thermally induced lattice strain at the nanocrystal-substrate interface in a single Au nanocrystal. It is confirmed that the strain distribution on the locally curved surface of the Au nanoparticle is consistent with the theoretical prediction known as the Young-Laplace effect. In contrast, the strain at the interface with the substrate is anomalous. We attribute it to the dissimilar interfacial energies between Au/Air and Au/Si and to the difference in thermal expansion between the nanocrystal and the substrate during the cooling process. These results indicate that the lattice strain of nanocrystals is influenced both by their interactions with the substrate as well as the geometric details.
机译:金纳米晶体对于光子学,纳米电子学,生物成像和生物传感器中的广泛潜在应用越来越重要。尽管已经开发了用于金纳米晶体的各种合成方法,但是大多数合成技术都采用表面活性剂来控制形状和/或尺寸。然而,我们在没有任何外来催化剂的情况下合成了多面体形状的金纳米晶体,因此我们能够避免表面活性剂对纳米晶体的物理性质的任何影响。然后,我们使用相干衍射成像技术研究了金纳米晶体的纳米尺度内部结构,形状和晶格畸变,并了解了生长动力学和合成技术的适用性。以及在单个Au纳米晶体中纳米晶-基底界面处的热晶格应变的影响。可以确认,金纳米粒子的局部弯曲表面上的应变分布与被称为杨-拉普拉斯效应的理论预测一致。相反,在与基底的界面处的应变是异常的。我们将其归因于Au / Air和Au / Si之间不同的界面能以及冷却过程中纳米晶体与基板之间的热膨胀差异。这些结果表明,纳米晶体的晶格应变受其与基底的相互作用以及几何细节的影响。

著录项

  • 作者

    Kim, Jong Woo.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Engineering Materials Science.;Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 112 p.
  • 总页数 112
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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