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使用实验和计算技术阐明薄荷醇基深共晶溶剂的结构。

Structure Elucidation of Menthol-Based Deep Eutectic Solvent using Experimental and Computational Techniques.

机构信息

Division of Quantum Chemistry, The Red-Green Research Center, BICCB, 16, Tejkunipara, Tejgaon, Dhaka 1215, Bangladesh.

Department of Chemistry, Jahangirnagar University, Savar, Dhaka 1342, Bangladesh.

出版信息

J Phys Chem A. 2021 Apr 1;125(12):2402-2412. doi: 10.1021/acs.jpca.0c10735. Epub 2021 Mar 23.

Abstract

The structural properties and nonbonding interactions of a menthol-based deep eutectic solvent (DES) were investigated in detail employing experimental and computational methods. A mass spectrometry analysis confirmed the formation of 1:1 l-menthol/acetic acid. A molecular dynamics simulation was used to figure out energetically most favorable cluster conformers of the 1:1 l-menthol/acetic acid system. Density functional theory at the ωB97XD/6-311G (d,p) level of theory was employed to optimize the isolated structures and to calculate their thermochemical properties. Both experimental and computed IR spectra were analyzed for the samples. Additionally, vibrational circular dichroism (VCD) spectra of the samples were measured to prove the chirality transfer. Principal component analysis (PCA) was used to make the data interpretation more vivid. All the spectral data analyses and nanostructure elucidation proved the spontaneous formation of the DES through the formation of strong hydrogen bonding. Experimental solvatochromism and computed highest occupied molecular orbital-lowest unoccupied molecular orbital gaps validated the reasoning. Moreover, comparative VCD and IR spectral analyses clearly indicated a chirality transfer from the chiral menthol to achiral acetic acid. This study suggests that various techniques, such as mass spectrometry, IR, solvatochromism, and computed IR-VCD could be useful and important tools to elucidate nanostructure and nonbonding interactions of a DES. VCD could be used as an excellent complementary technique to IR spectroscopy for a chiral molecule-based DESs.

摘要

采用实验和计算方法详细研究了基于薄荷醇的深共晶溶剂(DES)的结构性质和非键相互作用。质谱分析证实了 1:1 l-薄荷醇/乙酸的形成。分子动力学模拟用于确定 1:1 l-薄荷醇/乙酸体系中能量上最有利的团簇构象。采用 ωB97XD/6-311G(d,p)理论水平的密度泛函理论优化了孤立结构并计算了它们的热化学性质。对样品进行了实验和计算红外光谱分析。此外,还测量了样品的振动圆二色性(VCD)光谱以证明手性转移。主成分分析(PCA)用于使数据解释更加生动。所有光谱数据分析和纳米结构阐明都证明了 DES 通过形成强氢键自发形成。实验溶剂化变色和计算的最高占据分子轨道-最低未占据分子轨道间隙验证了这一推理。此外,比较 VCD 和 IR 光谱分析清楚地表明了手性从手性薄荷醇向非手性乙酸的转移。这项研究表明,各种技术,如质谱、IR、溶剂化变色和计算的 IR-VCD,可以成为阐明 DES 的纳米结构和非键相互作用的有用和重要工具。VCD 可以作为基于手性分子的 DESs 的 IR 光谱的极好补充技术。

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