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Spectroscopic and theoretical study of the electronic structure of curcumin and related fragment molecules

机译:姜黄素及其相关片段分子电子结构的光谱学和理论研究

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The low volatility and thermal instability made the photoelectron (PE), electron transmission (ET), and dissociative electron attachment (DEA) spectroscopy measurements on curcumin (a potent chemopreventive agent) unsuccessful. The filled and empty electronic structure of curcumin was therefore investigated by exploiting the PES, ETS, and DEAS results for representative fragment molecules and suitable quantum-mechanical calculations. On this basis, a reliable pattern of the vertical ionization energies and electron attachment energies of curcumin was proposed. The pi frontier molecular orbitals (MOs) are characterized by sizable interaction between the two phenol rings transmitted through the dicarbonyl chain and associated with a remarkably low ionization energy and a negative electron attachment energy (i.e., a largely positive electron affinity), diagnostic of a stable anion state not observable in ETS. The lowest energy electronic transitions of half-curcumin and curcumin and their color change by alkalization were interpreted with time-dependent density functional theory (DFT) calculations. For curcumin, it is shown that loss of a phenolic proton occurs in alkaline ethanolic solution.
机译:低挥发性和热不稳定性使得姜黄素(一种有效的化学预防剂)的光电子(PE),电子透射(ET)和离解电子附着(DEA)光谱测量无法成功。因此,通过利用PES,ETS和DEAS结果获得代表性的片段分子并进行适当的量子力学计算,研究了姜黄素的填充和空电子结构。在此基础上,提出了姜黄素的垂直电离能和电子附着能的可靠模式。 pi前沿分子轨道(MOs)的特征在于,通过二羰基链传输的两个酚环之间存在较大的相互作用,并具有非常低的电离能和负电子附着能(即,很大程度上为正电子亲和力),可诊断为在ETS中无法观察到的稳定阴离子状态。半时姜黄素和姜黄素的最低能量电子跃迁及其碱化引起的颜色变化用时变密度泛函理论(DFT)计算来解释。对于姜黄素,显示在碱性乙醇溶液中发生酚质子的损失。

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