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一台用于手性分子表征的、激光源波长为457nm的短波长拉曼旋光光谱仪。

A Short-Wavelength Raman Optical Activity Spectrometer with Laser Source at 457 nm for the Characterization of Chiral Molecules.

作者信息

Zhang Ying, Wang Peng, Jia Guoqing, Cheng Feng, Feng Zhaochi, Li Can

机构信息

1 State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, China.

2 University of Chinese Academy of Sciences, Beijing, China.

出版信息

Appl Spectrosc. 2017 Sep;71(9):2211-2217. doi: 10.1177/0003702817712260. Epub 2017 Jun 2.

Abstract

Developing a high-sensitivity Raman optical activity (ROA) spectrometer has been regarded as one of the great challenges in chiral science and technology. Herein, we report our recent progress on the development of a short-wavelength ROA (sw-ROA) spectrometer with the excitation line at 457 nm, which shows obviously improved signal-to-noise (S/N) ratio compared with the currently available 532 nm ROA spectrometer. This could be ascribed to the fifth-power of frequency dependence for ROA intensity together with the potential advantage of avoiding fluorescence for most molecules. The required laser power at the sample for being able to obtain a reliable ROA spectrum is less than 150 milliwatts (mW) for most samples. In the case of neat S-α-pinene sample, the ROA signal can be acquired with the laser power at sample as low as 5 mW with the total exposure time of 5 min. The concentration of S-α-pinene sample can be reduced to 10% (v/v) by diluting with ethanol. These results demonstrate the great potential of sw-ROA (457 nm) working with decreased laser power, shortened acquisition time, and lower sample concentration. The applicability of sw-ROA (457 nm) has also been demonstrated by measuring representative chiral samples, including carbohydrates, amino acids, protein in aqueous solution, and chiral organic molecule in organic solvents.

摘要

开发高灵敏度拉曼光学活性(ROA)光谱仪一直被视为手性科学与技术领域的重大挑战之一。在此,我们报告了我们在开发激发线为457nm的短波长ROA(sw-ROA)光谱仪方面的最新进展,与现有的532nm ROA光谱仪相比,其信噪比(S/N)有明显提高。这可能归因于ROA强度对频率的五次方依赖性以及对大多数分子避免荧光的潜在优势。对于大多数样品,能够获得可靠ROA光谱所需的样品处激光功率小于150毫瓦(mW)。对于纯S-α-蒎烯样品,在样品处激光功率低至5mW且总曝光时间为5分钟的情况下即可获得ROA信号。通过用乙醇稀释,S-α-蒎烯样品的浓度可降至10%(v/v)。这些结果证明了sw-ROA(457nm)在降低激光功率、缩短采集时间和降低样品浓度方面的巨大潜力。通过测量代表性手性样品,包括碳水化合物、氨基酸、水溶液中的蛋白质以及有机溶剂中的手性有机分子,也证明了sw-ROA(457nm)的适用性。

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