Xantheas Sotiris S, Roth Wolfgang, Fischer Ingo
Pacific Northwest National Laboratory, 906 Battelle Boulevard, P. O. Box 999, MS K1-83, Richland, Washington 99352, USA.
J Phys Chem A. 2005 Oct 27;109(42):9584-9. doi: 10.1021/jp053708e.
The excitation energy in the multiphoton ionization spectrum of the trans-1-naphthol/N(2) cluster shows only a small red shift with respect to isolated naphthol, indicating a van der Waals pi-bound structure rather than a hydrogen-bonded one. To confirm this interpretation, high-level electronic structure calculations were performed for several pi- and hydrogen-bonded isomers of this cluster. The calculations were carried out at the second order Møller-Plesset (MP2) level of perturbation theory with the family of correlation consistent basis sets up to quintuple-zeta quality including corrections for the basis set superposition error and extrapolation to the MP2 complete basis set (CBS) limit. We report the optimal geometries, vibrational frequencies, and binding energies (D(e)), also corrected for harmonic zero-point energies (D(0)), for three energetically low-lying isomers. In all calculations the lowest energy structure was found to be an isomer with the N(2) molecule bound to the pi-system of the naphthol ring carrying the OH group. In the CBS limit its dissociation energy was computed to be D(0) = 2.67 kcal/mol (934 cm(-1)) as compared to D(0) = 1.28 kcal/mol (448 cm(-1)) for the H-bound structure. The electronic structure calculations therefore confirm the assignment of the experimental electronic spectrum corresponding to a van der Waals pi-bound structure. The energetic stabilization of the pi-bound isomer with respect to the hydrogen-bonded one is rather unexpected when compared with previous findings in related systems, in particular phenol/N(2).
反式-1-萘酚/N₂团簇的多光子电离光谱中的激发能相对于孤立的萘酚仅显示出很小的红移,这表明其为范德华π键结构而非氢键结构。为证实这一解释,对该团簇的几种π键和氢键异构体进行了高水平的电子结构计算。计算在二阶Møller-Plesset(MP2)微扰理论水平下进行,使用了一系列相关一致基组,直至五重ζ质量,并包括基组叠加误差校正以及外推至MP2完全基组(CBS)极限。我们报告了三种能量较低的异构体的最佳几何结构、振动频率和结合能(D(e)),并对其进行了谐波零点能校正(D(0))。在所有计算中,发现能量最低的结构是一种异构体,其中N₂分子与带有OH基团的萘酚环的π体系相连。在CBS极限下,其解离能计算为D(0) = 2.67 kcal/mol(934 cm⁻¹),而氢键结构的D(0) = 1.28 kcal/mol(448 cm⁻¹)。因此,电子结构计算证实了与范德华π键结构相对应的实验电子光谱的归属。与相关体系(特别是苯酚/N₂)的先前发现相比,π键异构体相对于氢键异构体的能量稳定化相当出乎意料。