Sarkar Shubhra, Ramanathan N, Sundararajan K
Materials Chemistry & Metal Fuel Cycle Group, Homi Bhabha National Institute , Indira Gandhi Centre for Atomic Research , Kalpakkam , Tamil Nadu 603 102 , India.
J Phys Chem A. 2018 Nov 21;122(46):9073-9083. doi: 10.1021/acs.jpca.8b09076. Epub 2018 Nov 12.
The simultaneous possession of π-electron clouds and acidic hydrogen atoms in pyrrole (CHN) and phenol (CHOH) framework opens the potentiality in exploring the synergistic interactions in their weakly bonded complexes. In this work, the synergistic hydrogen bonding in CHN-CHOH complexes is therefore investigated using FTIR spectroscopy under isolated conditions at low temperatures. Computations performed at DFT, DFT-GD3, M06, and MP2 level of theories employing aug-cc-pVDZ basis set yielded three minima on the potential energy surface for the 1:1 complex of CHN-CHOH. All three optimized structures showed synergistic interactions, where both CHOH and CHN simultaneously act as a proton donor and acceptor at MP2/aug-cc-pVDZ level of theory. In the global minimum complex A, the hydroxyl proton and the C-H group of CHOH interact with the π-cloud of CHN. The first local minimum corresponds to complex B, where the N-H and π-electrons of CHN interact with π-electrons of CHOH. In complex C, the N-H and C-H groups of CHN interact with O-H and π-cloud of CHOH, respectively. Complex A was the lowest energy structure at all levels of theory, whereas the stabilization energies of complexes B and C varied depending upon the levels of theory used. Interestingly, the stabilization energies as predicted by the DFT method are in accordance with Etter's and Legon-Millen rules; however, a deviation in the Legon-Millen rule was discerned with empirical (DFT-GD3, M06) and dispersion corrected (MP2) methods. On comparing the experimental vibrational wavenumber shifts in the N-H stretching and bending modes of CHN and O-H stretching mode of CHOH submolecules with the computed shifts, all three complexes were identified in the N matrix. Natural Bond Orbital and Energy Decomposition analyses were performed to characterize the nature of the synergistic interaction in these complexes.
吡咯(CHN)和苯酚(CHOH)结构中同时存在π电子云与酸性氢原子,这为探索其弱键复合物中的协同相互作用提供了可能性。因此,在本研究中,利用傅里叶变换红外光谱(FTIR)在低温隔离条件下对CHN-CHOH复合物中的协同氢键进行了研究。采用aug-cc-pVDZ基组在DFT、DFT-GD3、M06和MP2理论水平上进行的计算,得到了CHN-CHOH 1:1复合物势能面上的三个极小值点。在MP2/aug-cc-pVDZ理论水平下,所有三种优化结构均显示出协同相互作用,其中CHOH和CHN同时作为质子供体和受体。在全局最小复合物A中,CHOH的羟基质子和C-H基团与CHN的π电子云相互作用。第一个局部最小对应于复合物B,其中CHN的N-H和π电子与CHOH的π电子相互作用。在复合物C中,CHN的N-H和C-H基团分别与CHOH的O-H和π电子云相互作用。在所有理论水平下,复合物A都是能量最低的结构,而复合物B和C的稳定化能则因所使用的理论水平而异。有趣的是,DFT方法预测的稳定化能符合埃特规则和勒贡-米伦规则;然而,采用经验方法(DFT-GD3、M06)和色散校正方法(MP2)时,发现与勒贡-米伦规则存在偏差。通过比较CHN的N-H伸缩和弯曲模式以及CHOH亚分子的O-H伸缩模式的实验振动波数位移与计算位移,在N矩阵中识别出了所有三种复合物。进行了自然键轨道和能量分解分析,以表征这些复合物中协同相互作用的性质。