论文标题
近距纳米结构近相互作用的手性物质纳米结构的圆二色性诱导的定量研究
Quantitative Study on Circular Dichroism Induction from Chiral Matter-Achiral Nanostructure Near Field Interactions
论文作者
论文摘要
手性分子与阿奇等离子金属纳米结构的相互作用引起的圆二色性(ICD)提高了分子手性检测的敏感性。尽管实验结果提出了ICD增强的几个阶段,但是ICD诱导的原因并未引起以前的研究。在本文中,提出的理论解释了手性分子与纳米结构的近场相互作用的ICD诱导机制。通过引入手性分子接近偶极子和分子 - 纳米结构相互作用的近场近似,我们得出了ICD的分析公式。该理论解释了ICD的机制是手性分子的偶极辐射破坏了纳米结构中电场强度的对映射关系。此外,派生的公式表现出与分子手性参数和数量密度成正比的ICD,并且随着分子和纳米结构之间的距离逆立方的成倍增加。最重要的是,该公式表明ICD与分子区域的纳米结构和磁场中的电场强度成正比。为了验证分析结果,我们研究了石墨烯纳米曲线元面(GNM)和手性分子组成的系统的ICD特性。发现数值结果与分析结果一致。我们的研究结果有助于理解ICD诱导的机制,推动ICD增强的极限并实现了对分子手性的超敏感检测。
The circular dichroism (ICD) induced from interaction of chiral molecules with achiral plasmonic metal nanostructures has improved sensitivity of molecular chirality detection. Although experimental results have presented several orders magnitude of ICD enhancement, but the cause of ICD induction has not arise from previous studies. In this paper, a theory presented for explain mechanism of ICD induction from near field interaction of chiral molecule with achiral nanostructure. By introducing dipole approaching of chiral molecule and a near field approximation of molecule-nanostructure interaction, we derived an analytical formula for ICD. This theory explains mechanism of ICD is that the dipole radiation of chiral molecules breaks the enantiomorphic relationship of the electric field strengths in the nanostructure. Furthermore, the derived formula exhibits ICD proportional to molecules chirality parameter and number density, and it exponentially increases with the inverse cube of distance between molecule and nanostructure. Most importantly, the formula shows that ICD is proportional to strengths of electric field in nanostructure and magnetic field in molecular region. To verify the analytical results, we studied the ICD properties of graphene nanohole metasurface (GNM) and chiral molecule composed system. Numerical results were found consistent with analytical results. Our investigation results are helpful for understanding mechanism of ICD induction, pushing the limit of ICD enhancement and realizing supersensitive detection of molecular chirality.