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Gauge invariant theory for super high resolution Raman images

机译:超高分辨率拉曼图像的量规不变理论

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摘要

The use of a highly localized plasmonic field has enabled us to achieve sub-nanometer resolution of Raman images for single molecules. The inhomogeneous spatial distribution of plasmonic field has become an important factor that controls the interaction between the light and the molecule. We present here a gauge invariant interaction Hamiltonian (GIIH) to take into account the non-uniformity of the electromagnetic field distribution in the non-relativistic regime. The theory has been implemented for both resonant and nonresonant Raman processes within the sum-over-state framework. It removes the gauge origin dependence in the phenomenologically modified interaction Hamiltonian (PMIH) employed in previous studies. Our calculations show that, in most resonant cases, the Raman images from GIIH are similar to those from PMIH when the origin is set to the nuclear charge center of the molecule. In the case of nonresonant Raman images, distinct differences can be found from two different approaches, while GIIH calculations provide more details and phase information of the images. Furthermore, the results from GIIH calculations are more stable with respect to the computational parameters. Our results not only help to correctly simulate the resonant and nonresonant Raman images of single molecules but also lay the foundation for developing gauge invariant theory for other linear and nonlinear optical processes under the excitation of non-uniform electromagnetic field.
机译:高度局限的等离子体场的使用使我们能够实现单分子拉曼图像的亚纳米分辨率。等离子体场的不均匀空间分布已成为控制光与分子之间相互作用的重要因素。我们在这里提出一个规范不变相互作用哈密顿量(GIIH),以考虑非相对论体系中电磁场分布的不均匀性。该理论已在总和状态框架内针对共振和非共振拉曼过程实现。它消除了以前研究中采用的现象学修改的相互作用哈密顿量(PMIH)中的量表原点依赖性。我们的计算表明,在大多数共振情况下,当起始点设置为分子的核电荷中心时,来自GIIH的拉曼图像与来自PMIH的拉曼图像相似。在非共振拉曼图像的情况下,可以从两种不同的方法中找到明显的差异,而GIIH计算提供了图像的更多细节和相位信息。此外,GIIH计算的结果相对于计算参数更稳定。我们的结果不仅有助于正确模拟单分子的共振和非共振拉曼图像,而且为在非均匀电磁场的激发下为其他线性和非线性光学过程发展规范不变理论奠定了基础。

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