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手性卟啉组装体的反射各向异性光谱研究。

Chiral Porphyrin Assemblies Investigated by a Modified Reflectance Anisotropy Spectroscopy Spectrometer.

机构信息

Department of Physics, Università di Roma Tor Vergata, Via della Ricerca Scientifica 1, 00133 Roma, Italy.

Department of Chemical Science and Technologies, Università di Roma Tor Vergata, Via della Ricerca Scientifica 1, 00133 Rome, Italy.

出版信息

Molecules. 2023 Apr 14;28(8):3471. doi: 10.3390/molecules28083471.

Abstract

Reflectance anisotropy spectroscopy (RAS) has been largely used to investigate organic compounds: Langmuir-Blodgett and Langmuir-Schaeffer layers, the organic molecular beam epitaxy growth in situ and in real time, thin and ultrathin organic films exposed to volatiles, in ultra-high vacuum (UHV), in controlled atmosphere and even in liquid. In all these cases, porphyrins and porphyrin-related compounds have often been used, taking advantage of the peculiar characteristics of RAS with respect to other techniques. The technical modification of a RAS spectrometer (CD-RAS: circular dichroism RAS) allows us to investigate the circular dichroism of samples instead of the normally studied linear dichroism: CD-RAS measures (in transmission mode) the anisotropy of the optical properties of a sample under right and left circularly polarized light. Although commercial spectrometers exist to measure the circular dichroism of substances, the "open structure" of this new spectrometer and its higher flexibility in design makes it possible to couple it with UHV systems or other experimental configurations. The importance of chirality in the development of organic materials (from solutions to the solid state, as thin layers deposited-in liquid or in vacuum-on transparent substrates) could open interesting possibilities to a development in the investigation of the chirality of organic and biological layers. In this manuscript, after the detailed explanation of the CD-RAS technique, some calibration tests with chiral porphyrin assemblies in solution or deposited in solid film are reported to demonstrate the quality of the results, comparing curves obtained with CD-RAS and a commercial spectrometer.

摘要

反射各向异性光谱学(RAS)在很大程度上被用于研究有机化合物:Langmuir-Blodgett 和 Langmuir-Schaeffer 层、有机分子束外延的原位和实时生长、暴露于挥发性物质的薄和超薄有机薄膜、在超高真空(UHV)、在受控气氛中,甚至在液体中。在所有这些情况下,卟啉和卟啉类化合物经常被使用,利用 RAS 相对于其他技术的特殊特性。RAS 光谱仪(CD-RAS:圆二色性 RAS)的技术改进允许我们研究样品的圆二色性,而不是通常研究的线二色性:CD-RAS 以透射模式测量样品在右圆偏振光和左圆偏振光下的光学各向异性。虽然存在用于测量物质圆二色性的商业光谱仪,但这种新型光谱仪的“开放式结构”及其在设计上更高的灵活性使其能够与 UHV 系统或其他实验配置相耦合。手性在有机材料(从溶液到固态,如沉积在透明衬底上的液体或真空中的薄膜)发展中的重要性可能为有机和生物层手性的研究开辟有趣的可能性。在本文中,在详细解释了 CD-RAS 技术之后,报告了一些用手性卟啉组装体在溶液或固体薄膜中沉积的校准测试,以证明结果的质量,比较了用 CD-RAS 和商业光谱仪获得的曲线。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9c50/10142836/9d5b941c93cd/molecules-28-03471-g001.jpg

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