首页> 外文期刊>The Journal of Chemical Physics >Nuclei-selected NMR shielding calculations: A sublinear-scaling quantum-chemical method
【24h】

Nuclei-selected NMR shielding calculations: A sublinear-scaling quantum-chemical method

机译:核选择的NMR屏蔽计算:亚线性标度量子化学方法

获取原文
获取原文并翻译 | 示例
           

摘要

An ab initio method for the direct calculation of NMR shieldings for selected nuclei at the Hartree-Fock and density-functional theory level is presented. Our method shows a computational effort scaling only sublinearly with molecular size, as it is motivated by the physical consideration that the chemical shielding is dominated by its local environment. The key feature of our method is to avoid the conventionally performed calculation of all NMR shieldings but instead to solve directly for specific nuclear shieldings. This has important implications not only for the study of large molecules, but also for the simulation of solvent effects and molecular dynamics, since often just a few shieldings are of interest. Our theory relies on two major aspects both necessary to provide a sublinear scaling behavior: First, an alternative expression for the shielding tensor is derived, which involves the response density matrix with respect to the nuclear magnetic moment instead of the response to the external magnetic field. Second, as unphysical long-range contributions occur within the description of distributed gauge origin methods that do not influence the final expectation value, we present a screening procedure to truncate the B-field dependent basis set, which is crucial in order to ensure an early onset of the sublinear scaling. The screening is in line with the r~(-2) distance decay of Biot-Savarts law for induced magnetic fields. Our present truncation relies on the introduced concept of individual gauge shielding contributions applied to a reformulated shielding tensor, the latter consisting of gauge-invariant terms. The presented method is generally applicable and shows typical speed-ups of about one order of magnitude; moreover, due to the reduced scaling behavior of O(1) as compared to O(N), the wins become larger with increasing system size. We illustrate the validity of our method for several test systems, including ring-current dominated systems and biomolecules with more than 1000 atoms.
机译:提出了一种从头算的方法,可以直接在Hartree-Fock和密度泛函理论水平上为选定的核计算NMR屏蔽。我们的方法显示出计算工作量仅与分子大小成线性关系,这是由于物理考虑决定了化学屏蔽主要受其局部环境的影响。我们方法的关键特征是避免常规执行的所有NMR屏蔽计算,而是直接求解特定的核屏蔽。这不仅对大分子的研究具有重要意义,而且对溶剂效应和分子动力学的模拟也具有重要意义,因为通常只有少数几种屏蔽作用是令人感兴趣的。我们的理论依赖于提供亚线性缩放行为所必需的两个主要方面:首先,得出屏蔽张量的替代表达式,其中涉及相对于核磁矩的响应密度矩阵,而不是对外部磁场的响应。其次,由于在不影响最终期望值的分布式量规起源方法的描述中发生了非物理的远程贡献,因此我们提出了一种筛选程序来截断依赖于B字段的基础集,这对于确保尽早实现次线性定标的开始。筛选与Biot-Savarts定律对感应磁场的r〜(-2)距离衰减一致。我们当前的截断依赖于引入到重新定义的屏蔽张量的单个规范屏蔽贡献的引入概念,后者由规范不变项组成。所提出的方法通常是适用的,并且显示出典型的加速幅度约为一个数量级。此外,由于与O(N)相比,O(1)的缩放行为减少,因此随着系统规模的增加,获胜会变得更大。我们说明了我们的方法对几种测试系统的有效性,包括环流主导的系统和具有1000个以上原子的生物分子。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号