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Two-Photon Polarization Dependent Spectroscopy in Chirality: A Novel Experimental-Theoretical Approach to Study Optically Active Systems

机译:手性中的双光子偏振相关光谱:研究光学活性系统的新型实验理论方法。

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摘要

Many phenomena, including life itself and its biochemical foundations are fundamentally rooted in chirality. Combinatorial methodologies for catalyst discovery and optimization remain an invaluable tool for gaining access to enantiomerically pure compounds in the development of pharmaceuticals, agrochemicals, and flavors. Some exotic metamaterials exhibiting negative refractive index at optical frequencies are based on chiral structures. Chiroptical activity is commonly quantified in terms of circular dichroism (CD) and optical rotatory dispersion (ORD). However, the linear nature of these effects limits their application in the far and near-UV region in highly absorbing and scattering biological systems. In order to surmount this barrier, in recent years we made important advancements on a novel non linear, low-scatter, long-wavelength CD approach called two-photon absorption circular dichroism (TPACD). Herein we present a descriptive analysis of the optics principles behind the experimental measurement of TPACD, i.e., the double L-scan technique, and its significance using pulsed lasers. We also make an instructive examination and discuss the reliability of our theoretical-computational approach, which uses modern analytical response theory, within a Time-Dependent Density Functional Theory (TD-DFT) approach. In order to illustrate the potential of this novel spectroscopic tool, we first present the experimental and theoretical results obtained in C2-symmetric, axially chiral R-(+)-1,1'-bi(2-naphthol), R-BINOL, a molecule studied at the beginning of our investigation in this field. Next, we reveal some preliminary results obtained for (R)-3,3′-diphenyl-2,2′-bi-1-naphthol, R-VANOL, and (R)-2,2′-diphenyl-3,3′-(4-biphenanthrol), R-VAPOL. This family of optically active compounds has been proven to be a suitable model for the structure-property relationship study of TPACD, because its members are highly conjugated yet photo-stable, and easily derivatized at the 5- and 6-positions. With the publication of these outcomes we hope to motivate more members of the scientist community to engage in state-of-the-art TPACD spectroscopy.
机译:许多现象,包括生命本身及其生化基础,都基本源于手性。用于催化剂发现和优化的组合方法学仍然是在开发药物,农用化学品和调味剂中获得对映体纯化合物的宝贵工具。一些在光频率下显示负折射率的奇异超材料是基于手性结构的。通常按圆二色性(CD)和旋光色散(ORD)来量化脊骨活动。然而,这些效应的线性性质限制了它们在高度吸收和散射的生物系统中在远紫外区域和近紫外区域的应用。为了克服这一障碍,近年来,我们在一种新型的非线性,低散射,长波长CD方法(称为双光子吸收圆二色性(TPACD))上取得了重要进展。本文中,我们对TPACD实验测量(即双L扫描技术)背后的光学原理进行了描述性分析,以及其在脉冲激光中的意义。我们还进行了有益的检查,并讨论了时变密度泛函理论(TD-DFT)方法中使用现代分析响应理论的理论计算方法的可靠性。为了说明这种新型光谱仪的潜力,我们首先介绍在C2对称,轴向手性R-(+)-1,1'-bi(2-萘酚),R-BINOL,在我们开始研究该领域时研究的一种分子。接下来,我们揭示了(R)-3,3'-联苯-2,2'-联-1-萘酚,R-VANOL和(R)-2,2'-联苯-3,3的一些初步结果′-(4-联苯酚),R-VAPOL。该光学活性化合物家族已被证明是TPACD结构-性质关系研究的合适模型,因为其成员高度共轭但光稳定,并且易于在5位和6位衍生化。随着这些成果的发布,我们希望能够激发更多的科学家群体参与最新的TPACD光谱学研究。

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