相关实验视频
Updated: Jun 16, 2025

08:07
A Micropatterning Assay for Measuring Cell Chirality
Published on: March 11, 2022
2.3K
在简单的不对称元面中,外在的奇拉性量身定制Stokes参数
Emilija Petronijevic1, Tiziana Cesca2, Carlo Scian2
1Department SBAI, Sapienza University of Roma, Via A. Scarpa 14, I-00161 Rome, Italy. emilija.petronijevic@uniroma1.it.
Nanoscale
|August 20, 2024
概括
简单的不对称的元表面控制光的极化. 这些低成本的基于纳米圈的设备表现出可调整的循环二元化 (CD) 和操纵斯托克斯参数,显示了形传感和平面光学应用的前景.
科学领域:
- 纳米光子学和等离子学
- 整形眼镜的元表面是表面.
- 轻物质相互作用 轻物质相互作用
背景情况:
- 超表面允许纳米级控制电磁波.
- 不对称的设计允许与左侧和右侧循环偏振光的差异相互作用.
- 状传感和平面光学受益于偏振依赖的光操纵.
研究的目的:
- 为了展示简单的,低成本的不对称的元表面来控制斯托克斯参数.
- 为了研究这些元表面的光谱和角调性.
- 为了将近场性反应与远场偏振控制相关联.
主要方法:
- 在聚烯纳米球 (50纳米厚) 上制造不对称的等离子体外.
- 使用灭绝循环二元化 (CD) 测量进行宽带外在性调查.
- 超光谱斯托克斯对线性极化激发下传输光的极度测量.
- 数字模拟来分析近场奇罗光学效应.
主要成果:
- 在近红外中实现了高灭绝圆形二极化 (CD).
- 对S3 Stokes参数进行了控制,反映了CD的行为.
- 通过撞击角度和波长展示了输出场的庞卡雷球体位置的广泛可调性.
- 实验结果与模拟结果有很好的一致性.
结论:
- 简单的,低成本的不对称的超表面有效地控制传输的远场斯托克斯参数.
- 可调节的外在奇拉性和极化控制可以在光谱和角度范围内实现.
- 近距离的光学反应对于外在的奇拉行为和传递的极化状态至关重要.
相关概念视频
Chirality
23.6K
Chirality is a term that describes the lack of mirror symmetry in an object. In other words, chiral objects cannot be superposed on their mirror images. For example, our feet are chiral, as the mirror image of the left foot, the right foot, cannot be superposed on the left foot.
Chiral objects exhibit a sense of handedness when they interact with another chiral object. For example, our left foot can only fit in the left shoe and not in the right shoe. Achiral objects — objects that have...
Chiral objects exhibit a sense of handedness when they interact with another chiral object. For example, our left foot can only fit in the left shoe and not in the right shoe. Achiral objects — objects that have...
23.6K
Prochirality
3.8K
The concept of prochirality leads to the nomenclature of the individual faces of a molecule and plays a crucial role in the enantioselective reaction. It is a concept where two or more achiral molecules react to produce chiral products. A typical process is the reaction of an achiral ketone to generate a chiral alcohol. Here, the achiral reactant reacts with an achiral reducing agent, sodium borohydride, to generate an equimolar mixture of the chiral enantiomers of the product. For example, an...
3.8K
Properties of Enantiomers and Optical Activity
16.8K
It is essential to understand the difference between chiral and achiral interactions and the implications thereof in optical activity and their applications. Just as our feet, which are chiral, interact uniquely with chiral objects, such as a pair of shoes, but identically with achiral socks, enantiomers of a molecule exhibit different properties only when they interact with other chiral media. An example of a significant implication from this facet is the phenomenon known as optical activity,...
16.8K
Chirality in Nature
13.2K
Chirality is the most intriguing yet essential facet of nature, governing life’s biochemical processes and precision. It can be observed from a snail shell pattern in a macroscopic world to an amino acid, the minutest building block of life. Most of the snails around the world have right-coiled shells because of the intrinsic chirality in their genes. All the amino acids present in the human body exist in an enantiomerically pure state, except for glycine - the sole achiral amino acid.
13.2K
Molecules with Multiple Chiral Centers
11.4K
Molecules that possess multiple chiral centers can afford a large number of stereoisomers. For instance, while some molecules like 2-butanol have one chiral center, defined as a tetrahedral carbon atom with four different substituents attached, several molecules like butane-2,3-diol have multiple chiral centers. A simple formula to predict the number of stereoisomers possible for a molecule with n chiral centers is 2n. However, there can be a lower number where some of the stereoisomers are...
11.4K
Fischer Projections
13.1K
Learning to draw Fischer projections of molecules and understanding their relevance plays a crucial role in the visual depiction of organic molecules. A Fischer projection is a two-dimensional projection on a planar surface to simplify the three-dimensional wedge–dash representation of molecules. This is especially helpful in the case of molecules with multiple chiral centers that can be difficult to draw. Here, all the bonds of interest are represented as horizontal or vertical lines.
13.1K

