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Large-Scale Computation of Nuclear Magnetic Resonance Shifts for Paramagnetic Solids Using CP2K

机译:使用CP2K对核磁共振的大规模计算转换顺磁固体

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Large-scale computations of nuclear magnetic resonance (NMR) shifts for extended paramagnetic solids (pNMR) are reported using the highly efficient Gaussian-augmented plane-wave implementation of the CP2K code. Combining hyperfine couplings obtained with hybrid functionals with g-tensors and orbital shieldings computed using gradient-corrected functionals, contact, pseudocontact, and orbital-shift contributions to pNMR shifts are accessible. Due to the efficient and highly parallel performance of CP2K, a wide variety of materials with large unit cells can be studied with extended Gaussian basis sets. Validation of various approaches for the different contributions to pNMR shifts is done first for molecules in a large supercell in comparison with typical quantum-chemical codes. This is then extended to a detailed study of g-tensors for extended solid transition-metal fluorides and for a series of complex lithium vanadium phosphates. Finally, lithium pNMR shifts are computed for Li3V2(PO4)(3), for which detailed experimental data are available. This has allowed an in-depth study of different approaches (e.g., full periodic versus incremental cluster computations of g-tensors and different functionals and basis sets for hyperfine computations) as well as a thorough analysis of the different contributions to the pNMR shifts. This study paves the way for a more-widespread computational treatment of NMR shifts for paramagnetic materials.
机译:利用CP2K程序的高效高斯增强平面波实现,报道了扩展顺磁固体(pNMR)核磁共振(NMR)位移的大规模计算。结合混合泛函与g张量的超精细耦合,以及使用梯度修正泛函计算的轨道屏蔽,可以获得接触、伪接触和轨道位移对pNMR位移的贡献。由于CP2K的高效和高度并行性能,可以用扩展的高斯基集研究各种各样的大单元材料。与典型的量子化学代码相比,首先对大型超单体中的分子验证了不同方法对pNMR位移的不同贡献。然后将其扩展到扩展固体过渡金属氟化物和一系列复杂锂钒磷酸盐的g张量的详细研究。最后,计算了Li3V2(PO4)(3)的锂pNMR位移,获得了详细的实验数据。这使得我们能够深入研究不同的方法(例如,g张量的全周期和增量聚类计算,以及超精细计算的不同泛函和基集),并彻底分析对pNMR位移的不同贡献。这项研究为更广泛地计算顺磁性材料的核磁共振位移铺平了道路。

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