Surface functionalized spherical nanoparticles: an optical assessment of local chirality

J. M. Leeder, Henryk T. Haniewicz, D. Andrews
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引用次数: 2

Abstract

Electromagnetic radiation propagating through any molecular system typically experiences a characteristic change in its polarization state as a result of light-matter interaction. Circularly polarized light is commonly absorbed or scattered to an extent that is sensitive to the incident circularity, when it traverses a medium whose constituents are chiral. This research assesses specific modifications to the properties of circularly polarized light that arise on passage through a system of surface-functionalized spherical nanoparticles, through the influence of chiral molecules on their surfaces. Non-functionalized nanospheres of atomic constitution are usually inherently achiral, but can exhibit local chirality associated with such surface-bound chromophores. The principal result of this investigation is the quantification of functionally conferred nanoparticle chirality, manifest through optical measurements such as circularly polarized emission. The relative position of chiral chromophores fixed to a nanoparticle sphere are first determined by means of spherical coverage co-ordinate analysis. The total electromagnetic field received by a spatially fixed, remote detector is then determined. It is shown that bound chromophores will accommodate both electric and magnetic dipole transition moments, whose scalar product represents the physical and mathematical origin of chiral properties identified in the detected signal. The analysis concludes with discussion of the magnitude of circular differential optical effects, and their potential significance for the characterization of surface-functionalized nanoparticles.
表面功能化球形纳米粒子:局部手性的光学评估
电磁辐射通过任何分子系统传播时,由于光-物质相互作用,其极化状态通常会发生特征变化。当圆偏振光穿过具有手性成分的介质时,通常被吸收或散射到对入射圆度敏感的程度。本研究通过手性分子对表面功能化球形纳米粒子的影响,评估了圆偏振光通过表面功能化球形纳米粒子系统时产生的特性的特定修饰。原子结构的非功能化纳米球通常是固有的非手性,但可以表现出与这种表面结合的发色团相关的局部手性。这项研究的主要结果是通过圆偏振发射等光学测量来量化功能赋予的纳米颗粒手性。首先通过球覆盖坐标分析确定了固定在纳米颗粒球上的手性发色团的相对位置。然后确定空间固定的远程探测器接收到的总电磁场。结果表明,结合的发色团可以同时容纳电偶极子和磁偶极子跃迁矩,其标量积代表了在检测信号中识别的手性性质的物理和数学起源。分析最后讨论了圆微分光学效应的大小,以及它们对表面功能化纳米粒子表征的潜在意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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