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NMR shielding tensors for density fitted local second-order Moller-Plesset perturbation theory using gauge including atomic orbitals

机译:核磁共振张量用于密度拟合的局部二阶Moller-Plesset微扰理论,其使用的量规包括原子轨道

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摘要

An efficient method for the calculation of nuclear magnetic resonance (NMR) shielding tensors is presented, which treats electron correlation at the level of second-order Moller-Plesset perturbation theory. It uses spatially localized functions to span occupied and virtual molecular orbital spaces, respectively, which are expanded in a basis of gauge including atomic orbitals (GIAOs or London atomic orbitals). Doubly excited determinants are restricted to local subsets of the virtual space and pair energies with an interorbital distance beyond a certain threshold are omitted. Furthermore, density fitting is employed to factorize the electron repulsion integrals. Ordinary Gaussians are employed as fitting functions. It is shown that the errors in the resulting NMR shielding constant, introduced (i) by the local approximation and (ii) by density fitting, are very small or even negligible. The capabilities of the new program are demonstrated by calculations on some extended molecular systems, such as the cyclobutane pyrimidine dimer photolesion with adjacent nucleobases in the native intrahelical DNA double strand (ATTA sequence). Systems of that size were not accessible to correlated ab initio calculations of NMR spectra before. The presented method thus opens the door to new and interesting applications in this area.
机译:提出了一种计算核磁共振屏蔽张量的有效方法,该方法在二阶Moller-Plesset微扰理论水平上处理电子相关性。它使用空间局部化函数分别跨越所占据的空间和虚拟的分子轨道空间,这些空间在包括原子轨道(GIAO或伦敦原子轨道)的量规基础上得以扩展。双激发行列式仅限于虚拟空间的局部子集,并且省略了轨道间距离超过某个阈值的对能量。此外,采用密度拟合来分解电子排斥积分。普通高斯人被用作拟合函数。结果表明,(i)通过局部逼近和(ii)通过密度拟合引入的所得NMR屏蔽常数的误差很小,甚至可以忽略不计。通过在一些扩展的分子系统上进行的计算证明了该新程序的功能,例如在天然螺旋内DNA双链(ATTA序列)中具有相邻核碱基的环丁烷嘧啶二聚体光损伤。该大小的系统之前无法进行NMR光谱的相关从头计算。因此,提出的方法为该领域的新的有趣应用打开了大门。

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