Krasnokutski Serge A, Yang Dong-Sheng
Department of Chemistry, University of Kentucky, Lexington, Kentucky 40506-0055, USA.
J Phys Chem A. 2007 Oct 25;111(42):10567-73. doi: 10.1021/jp074933u. Epub 2007 Oct 3.
Al-uracil (Al-C4H4N2O2) was synthesized in a laser-vaporization supersonic molecular beam source and studied with pulsed field ionization-zero electron kinetic energy (ZEKE) photoelectron spectroscopy and density functional theory (DFT). The DFT calculations predicted several low-energy Al-uracil isomers with Al binding to the diketo, keto-enol, and dienol tautomers of uracil. The ZEKE spectroscopic measurements of Al-uracil determined the ionization energy of 43 064(5) cm-1 [or 5.340(6) eV] and a vibrational mode of 51 cm-1 for the neutral complex and several vibrational modes of 51, 303, 614, and 739 cm-1 for the ionized species. Combination of the ZEEK spectrum with the DFT and Franck-Condon factor calculations determined the preferred isomeric structure and electronic states of the Al-uracil complex. This isomer is formed by Al binding to the O4 atom of the diketo tautomer of uracil and has a planar Cs symmetry. The ground electronic states of the neutral and ionized species are 2A' ' and 1A', respectively. The 2A' ' neutral state has a slightly shorter Al-O4 distance than the 1A' ion state. However, the 1A' ion state has stronger metal-ligand binding compared to the 2A' ' state. The increased Al-O4 distance from the 2A' ' state to the 1A' state is attributed to the loss of the pi binding interaction between Al and O4 in the singlet ion state, whereas the increased metal-ligand binding strength is due to the additional charge-dipole interaction in the ion that surpasses the loss of the pi orbital interaction.
铝-尿嘧啶(Al-C₄H₄N₂O₂)在激光蒸发超声分子束源中合成,并通过脉冲场电离-零电子动能(ZEKE)光电子能谱和密度泛函理论(DFT)进行研究。DFT计算预测了几种低能量的铝-尿嘧啶异构体,其中铝与尿嘧啶的二酮、酮-烯醇和二烯醇互变异构体结合。铝-尿嘧啶的ZEKE光谱测量确定了中性配合物的电离能为43064(5) cm⁻¹ [或5.340(6) eV],振动模式为51 cm⁻¹,离子化物种的几种振动模式为51、303、614和739 cm⁻¹。ZEKE光谱与DFT和弗兰克-康登因子计算相结合,确定了铝-尿嘧啶配合物的优选异构体结构和电子态。这种异构体是由铝与尿嘧啶二酮互变异构体的O4原子结合形成的,具有平面Cs对称性。中性和离子化物种的基态电子态分别为²A''和¹A'。²A''中性态的Al-O4距离比¹A'离子态略短。然而,与²A''态相比,¹A'离子态具有更强的金属-配体结合。从²A''态到¹A'态Al-O4距离的增加归因于单重态离子态中Al和O4之间π键相互作用的丧失,而金属-配体结合强度的增加是由于离子中额外的电荷-偶极相互作用超过了π轨道相互作用的丧失。