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Competition of Intra- and Intermolecular Forces in Anthraquinone and Its Selected Derivatives

机译:蒽醌及其选定衍生物中分子间势力的竞争

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摘要

Intra- and intermolecular forces competition was investigated in the 9,10-anthraquinone (1) and its derivatives both in vacuo and in the crystalline phase. The 1,8-dihydroxy-9,10-anthraquinone (2) and 1,8-dinitro-4,5-dihydroxy-anthraquinone (3) contain Resonance-Assisted Hydrogen Bonds (RAHBs). The intramolecular hydrogen bonds properties were studied in the electronic ground and excited states employing Møller-Plesset second-order perturbation theory (MP2), Density Functional Theory (DFT) method in its classical formulation as well as its time-dependent extension (TD-DFT). The proton potential functions were obtained via scanning the OH distance and the dihedral angle related to the OH group rotation. The topological analysis was carried out on the basis of theories of Atoms in Molecules (AIM—molecular topology, properties of critical points, AIM charges) and Electron Localization Function (ELF—2D maps showing bonding patterns, calculation of electron populations in the hydrogen bonds). The Symmetry-Adapted Perturbation Theory (SAPT) was applied for the energy decomposition in the dimers. Finally, Car–Parrinello molecular dynamics (CPMD) simulations were performed to shed light onto bridge protons dynamics upon environmental influence. The vibrational features of the OH stretching were revealed using Fourier transformation of the autocorrelation function of atomic velocity. It was found that the presence of OH and NO2 substituents influenced the geometric and electronic structure of the anthraquinone moiety. The AIM and ELF analyses showed that the quantitative differences between hydrogen bonds properties could be neglected. The bridged protons are localized on the donor side in the electronic ground state, but the Excited-State Intramolecular Proton Transfer (ESIPT) was noticed as a result of the TD-DFT calculations. The hierarchy of interactions determined by SAPT method indicated that weak hydrogen bonds play modifying role in the organization of these crystal structures, but primary ordering factor is dispersion. The CPMD crystalline phase results indicated bridged proton-sharing in the compound 2.
机译:分子内和分子间力竞争的9,10-蒽醌(1)和其两个在真空和在结晶相衍生物进行了研究。 1,8-二羟基-9,10-蒽醌(2)和1,8-硝基-4,​​5-二羟基 - 蒽醌(3)含有共振辅助氢键(Rahbs)。在其经典配方中采用Møller-Plesset二阶扰动理论(MP2),密度泛函理论(DFT)方法的电子地面和激发态的分子内氢键特性以及其经典的扩展​​(TD-DFT )。通过扫描OH距离和与OH基团旋转相关的二对面角获得质子电位功能。基于分子中原子的原子的理论(关键点,临界点的性质,目标电荷的性质,临界点的性质)和电子定位函数(ELF-2D图,显示粘合图案,氢键中的电子群的计算来进行拓扑分析)。对称适应的扰动理论(SAPT)用于二聚体中的能量分解。最后,在环境影响下,对CAR-Parrinello分子动力学(CPMD)模拟进行桥梁闪光。利用原子速度的自相关函数的傅里叶变换揭示了OH拉伸的振动特征。发现OH和NO 2取代基的存在影响了蒽醌部分的几何和电子结构。目的和精灵分析表明,可以忽略氢键特性之间的定量差异。桥接质子在电子地面状态下局部地定位在供体侧,但由于TD-DFT计算,注意到激发状态分子内质子转移(ESIPT)。由SAPT方法确定的相互作用的层次表示,弱氢键在这些晶体结构的组织中起修改的作用,但是初级排序因子是分散的。 CPMD结晶相结果表示化合物2中的桥接质子共享。

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