Filippi Antonello, Fraschetti Caterina, Grandinetti Felice, Speranza Maurizio, Ponzi Aurora, Decleva Piero, Stranges Stefano
Dipartimento di Chimica e Tecnologie del Farmaco, Universitá "Sapienza", P.le A. Moro 5, 00185, Roma, Italy.
Phys Chem Chem Phys. 2015 Oct 21;17(39):25845-53. doi: 10.1039/c5cp01471a.
The first comprehensive investigation of the effect of conformational flexibility of gaseous D-cycloserine on the valence and core electronic structures is reported here. The seven most stable conformers among the twelve structures calculated at the MP2/6-311++G** level of theory were assumed to properly describe the properties of the investigated compound. Taking into account the contribution of these isomers, the valence photoelectron spectrum (UPS) was simulated by the Outer Valence Green' s Function (OVGF) method. A different sensitivity towards the conformational flexibility of the outermost photoelectron bands was exhibited in the simulated spectrum. The comparison of the theoretical UPS with the experimental one allowed a detailed assignment of the outermost valence spectral region. The composition and bonding properties of the relevant MOs of the most stable conformers were analyzed in terms of leading Natural Bond Orbital (NBO) contributions to the HF/6-311++G** canonical MOs. The C1s, N1s, and O1s photoelectron spectra (XPS) were theoretically simulated by calculating the vertical Ionization Energies (IEs) of the relevant conformers using the ΔSCF approach. The different IE chemical shift spread of the XPS components associated with various conformers, which is expected to affect the experimental spectra, could be evaluated by simulated XPS, thus providing a new insight into the core electronic structure. The comparison of the theoretical results with the experimental ones unraveled that the atomic XPS components are not mixed by conformational flexibility of D-cycloserine, and that the specific vibronic structure of different spectral components should play a crucial role in determining different relative intensities and band shapes observed in the experiment.
本文报道了对气态D-环丝氨酸构象灵活性对价电子和核心电子结构影响的首次全面研究。在MP2/6-311++G理论水平计算的12种结构中,假定7种最稳定的构象体能够恰当地描述所研究化合物的性质。考虑到这些异构体的贡献,采用外层价态格林函数(OVGF)方法模拟了价光电子能谱(UPS)。模拟谱中表现出对最外层光电子能带构象灵活性的不同敏感性。理论UPS与实验结果的比较使得能够详细归属最外层价态光谱区域。根据对HF/6-311++G正则分子轨道的主要自然键轨道(NBO)贡献,分析了最稳定构象体相关分子轨道的组成和键合性质。通过使用ΔSCF方法计算相关构象体的垂直电离能(IE),从理论上模拟了C1s、N1s和O1s光电子能谱(XPS)。通过模拟XPS可以评估与各种构象体相关的XPS组分不同的IE化学位移展宽,这有望影响实验谱,从而为核心电子结构提供新的见解。理论结果与实验结果的比较表明,D-环丝氨酸的构象灵活性不会混合原子XPS组分,并且不同光谱组分的特定振动电子结构在决定实验中观察到的不同相对强度和能带形状方面应起关键作用。