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Steady-State Linear and Non-linear Optical Spectroscopy of Organic Chromophores and Bio-macromolecules

机译:有机发色团和生物大分子的稳态线性和非线性光学光谱。

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Bio-macromolecules as DNA, lipid membranes and (poly)peptides are essential compounds at the core of biological systems. The development of techniques and methodologies for their characterization is therefore necessary and of utmost interest, even though difficulties can be experienced due to their intrinsic complex nature. Among these methods, spectroscopies, relying on optical properties are especially important to determine their macromolecular structures and behaviors, as well as the possible interactions and reactivity with external dyes – often drugs or pollutants – that can (photo)sensitize the bio-macromolecule leading to eventual chemical modifications, thus damages. In this review, we will focus on the theoretical simulation of electronic spectroscopies of bio-macromolecules, considering their secondary structure and including their interaction with different kind of (photo)sensitizers. Namely, absorption, emission and electronic circular dichroism (CD) spectra are calculated and compared with the available experimental data. Non-linear properties will be also taken into account by two-photon absorption, a highly promising technique (i) to enhance absorption in the red and infra-red windows and (ii) to enhance spatial resolution. Methodologically, the implications of using implicit and explicit solvent, coupled to quantum and thermal samplings of the phase space, will be addressed. Especially, hybrid quantum mechanics/ molecular mechanics (QM/MM) methods are explored for a comparison with solely QM methods, in order to address the necessity to consider an accurate description of environmental effects on spectroscopic properties of biological systems.
机译:生物大分子,如DNA,脂质膜和(多肽)肽是生物系统核心的必需化合物。因此,尽管由于其内在的复杂性可能会遇到困难,但开发用于表征的技术和方法是必要的,并且是最大的兴趣。在这些方法中,依赖于光学性质的光谱学对于确定其大分子结构和行为以及与外部染料(通常是药物或污染物)的可能的相互作用和反应性尤其重要,后者可以(光)敏化生物大分子,从而导致最终化学修饰,从而造成损害。在这篇综述中,我们将重点关注生物大分子电子光谱学的理论模拟,考虑其二级结构并包括它们与不同种类的(光)敏化剂的相互作用。即,计算吸收,发射和电子圆二色性(CD)光谱,并将其与可用的实验数据进行比较。非线性特性也将通过双光子吸收来考虑,这是一种很有前途的技术(i)增强红色和红外窗口的吸收,以及(ii)增强空间分辨率。从方法上讲,将讨论使用隐式和显式溶剂以及相空间的量子和热采样的含义。尤其是,探索混合量子力学/分子力学(QM / MM)方法与仅QM方法进行比较,以解决考虑对环境对生物系统光谱特性的影响进行准确描述的必要性。

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