...
首页> 外文期刊>Nanoscale >Correlating structure, morphology and properties of metal nanostructures by combining single-particle optical spectroscopy and electron microscopy
【24h】

Correlating structure, morphology and properties of metal nanostructures by combining single-particle optical spectroscopy and electron microscopy

机译:关联结构,形态和属性金属纳米结构相结合单粒子光学光谱和电子显微镜

获取原文
获取原文并翻译 | 示例

摘要

The nanoscale morphology of metal nanostructures directly defines their optical, catalytic and electronic properties and even small morphological changes can cause significant property variations. On the one hand, this dependence allows for precisely tuning and exploring properties by shape engineering; next to advanced synthesis protocols, post-synthesis modification through tailored laser modification has become an emerging tool to do so. On the other hand, with this interconnection also comes the quest for detailed structure–property correlation and understanding of laser-induced reshaping processes on the individual nanostructure level beyond ensemble averages. With the development of single-particle (ultrafast) optical spectroscopy techniques and advanced electron microscopy such understanding can in principle be gained at the femtosecond temporal and atomic spatial scale, respectively. However, accessing both on the same individual nanostructure is far from straightforward as it requires the combination of optical spectroscopy and electron microscopy. In this Minireview, we highlight key studies from recent years that performed such correlative measurements on the same individual metal nanostructure either in a consecutive ex situ manner or in situ inside the electron microscope. We demonstrate that such a detailed correlation is critical for revealing the full picture of the structure–property relationship and the physics behind light-induced nanostructure modifications. We put emphasis on the advantages and disadvantages of each methodology as well as on the unique information that one can gain only by correlative studies performed on the same individual nanostructure and end with an outlook on possible further development of this field in the near future.
机译:金属纳米结构的纳米形态直接定义了他们的光学、催化和电子性质,甚至小形态变化可以导致重要属性的变化。依赖允许精确的调优和探索性质的形状工程;先进的合成方案,post-synthesis修改通过定制的激光改性已经成为一个新兴的工具。另一方面,这种互联也来了寻求详细的组织性能相关性和激光的理解在个人重塑过程纳米结构超出了系综平均水平。与单粒子的发展(超速)光学和光谱学技术先进的电子显微镜等的理解原则上可以在飞秒了吗时间和原子空间规模,分别。然而,访问同一个人纳米结构简单易懂需要的组合光学光谱和电子显微镜。从近年来突出关键研究执行这样的相关测量同一个人在一个金属奈米结构连续非原位的方式或内原位电子显微镜。详细的相关性揭示的关键组织性能的全貌关系,光致背后的物理学纳米结构的修改。各自的优点和缺点方法以及独特的信息唯一可以获得的相关研究上执行相同的单个纳米结构和结束的前景可能会进一步在不久的将来这一领域的发展。

著录项

相似文献

  • 外文文献
  • 中文文献
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号