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Modeling the weak hydrogen bonding of pyrrole and dichloromethane through Raman and DFT study

机译:通过拉曼和DFT研究模拟吡咯和二氯甲烷的弱氢键

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Raman spectra of neat pyrrole (C4H5N) and its binary mixtures with dichloromethane (CH2Cl2, DCM) with varying mole fractions of C4H5N from 0.1 to 0.9 were recorded in order to monitor the influence of molecular interaction on spectral features of selected vibrational bands of pyrrole in the region 600-1600 cm-1. Only 1369 cm-1 vibrational band of pyrrole shows a significant change in its peak position in going from neat pyrrole to the complexes. The 1369 cm-1 band shows (∼6 cm-1) blue shift upon dilution and the corresponding linewidth shows the maximum shift at C = 0.5 mole fraction of pyrrole upon dilution which clearly indicates that the concentration fluctuation model plays major role. Quantum chemical calculation using density functional theory (DFT) and ab-initio (MP2 and HF) methods were performed employing high level basis set, 6-311++G(d,p) to obtain the ground state geometry of neat pyrrole and its complexes with DCM in gas phase. Basis set superimpose error (BSSE) correction was also introduced by using the counterpoise method. In order to account for the solvent effect on vibrational features and changes in optimized structural parameters of pyrrole, polarizable continuum model (PCM) (bulk solvations) and PCM (specific plus bulk solvations) calculations were performed. Two possible configurations of pyrrole + DCM complex have been predicted by B3LYP and HF methods, whereas the MP2 method gave only single configuration in which H atom of DCM is bonded to π ring of the pyrrole molecule. This affects significantly the ring vibrations of pyrrole molecule, which was also observed in our experimental results.
机译:纯净吡咯(C4 H5 N)及其与二氯甲烷(CH2 Cl2 ,DCM)的二元混合物的拉曼光谱,其中C4 H5 <记录从0.1到0.9的/ sub> N,以监测分子相互作用对选定的600-1600 cm-1 区域的吡咯振动带的光谱特征的影响。从纯吡咯到配合物,吡咯只有1369 cm-1 振动带峰位置发生了显着变化。 1369 cm-1 谱带在稀释时显示(〜6 cm-1 )蓝移,相应的线宽显示C = 0.5吡咯的摩尔分数在稀释时的最大位移,这清楚表明浓度波动模型起主要作用。使用高水平基集6-311 ++ G(d,p),使用密度泛函理论(DFT)和从头算(MP2和HF)方法进行量子化学计算,得到纯吡咯及其基态在气相中与DCM形成络合物。还使用反平衡法引入了基集叠加误差(BSSE)校正。为了考虑溶剂对振动特性的影响以及吡咯的最佳结构参数的变化,进行了可极化连续介质模型(PCM)(本体溶剂化)和PCM(比色与本体溶剂化)的计算。 B3LYP和HF方法预测了吡咯+ DCM配合物的两种可能构型,而MP2方法仅给出了DCM的H原子与吡咯分子的π环键合的单一构型。这显着影响了吡咯分子的环振动,这在我们的实验结果中也可以观察到。

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