Orozco-Ic Mesías, Charistos Nickolas D, Muñoz-Castro Alvaro, Islas Rafael, Sundholm Dage, Merino Gabriel
Department of Chemistry, Faculty of Science, University of Helsinki, P.O. Box 55, A. I. Virtasen aukio 1, FIN-00014 Helsinki, Finland.
Aristotle University of Thessaloniki, Department of Chemistry, Laboratory of Quantum and Computational Chemistry, Thessaloniki, 54 124, Greece.
Phys Chem Chem Phys. 2022 May 25;24(20):12158-12166. doi: 10.1039/d1cp05713h.
Orbital contributions to the magnetic response depend on the method used to compute them. Here, we show that dissecting nuclear magnetic shielding tensors using natural localized molecular orbitals (NLMOs) leads to anomalous core contributions. The arbitrariness of the assignment might significantly affect the interpretation of the magnetic response of nonplanar molecules such as C or [14]helicene and the assessment of their aromatic character. We solve this problem by computing the core- and σ-components of the induced magnetic field (and NICS) and the magnetically induced current density by removing the valence electrons (RVE). We estimate the core contributions to the magnetic response by performing calculations on the corresponding highly charged molecules, such as CH for benzene, using gauge-including atomic orbitals and canonical molecular orbitals (CMOs). The orbital contributions to nuclear magnetic shielding tensors are usually estimated by employing a natural chemical shielding (NCS) analysis in NLMO or CMO bases. The RVE approach shows that the core contribution to the magnetic response is small and localized at the nuclei, contrary to what NCS calculations suggest. This may lead to a completely incorrect interpretation of the magnetic σ-orbital response of nonplanar structures, which may play a major role in the overall magnetic shielding of the system. The RVE approach is thus a simple and inexpensive way to determine the magnetic response of the core- and σ-electrons.
轨道对磁响应的贡献取决于计算它们所使用的方法。在这里,我们表明,使用自然定域分子轨道(NLMOs)剖析核磁屏蔽张量会导致异常的核心贡献。这种分配的随意性可能会显著影响对诸如C或[14]螺旋烯等非平面分子磁响应的解释以及对其芳香性的评估。我们通过去除价电子(RVE)来计算感应磁场(和NICS)的核心分量和σ分量以及磁感应电流密度,从而解决了这个问题。我们通过使用含规范原子轨道和正则分子轨道(CMO)对相应的高电荷分子(如苯的CH)进行计算,来估计核心对磁响应的贡献。通常通过在NLMO或CMO基组中采用自然化学屏蔽(NCS)分析来估计轨道对核磁屏蔽张量的贡献。RVE方法表明,与NCS计算结果相反,核心对磁响应的贡献很小且局限于原子核。这可能会导致对非平面结构的磁σ轨道响应产生完全错误的解释,而这种响应可能在系统的整体磁屏蔽中起主要作用。因此,RVE方法是一种简单且成本低廉的确定核心电子和σ电子磁响应的方法。