Royal Society Open Science · 2021 · 14 citations · 37 references
Twelve common density functional methods and seven basis sets for geometry optimization were evaluated on the accuracy of <sup>1</sup>H/<sup>13</sup>C NMR chemical shift calculations for biaryls. For these functionals, <sup>1</sup>H shifts calculations for gas phase optimized geometries were significantly less accurate than those for in-solution optimized structures, while <sup>13</sup>C results were not strongly influenced by geometry optimization methods and solvent effects. B3LYP, B3PW91, mPW1PW91 and <i>ω</i>B97XD were the best-performing functionals with lowest errors; among seven basis sets, DGDZVP2 and 6-31G(d,p) outperformed the others. The combination of these functionals and basis sets resulted in high accuracy with CMAE<sub>min</sub> = 0.0327 ppm (0.76%) and 0.888 ppm (0.58%) for <sup>1</sup>H and <sup>13</sup>C, respectively. The selected functionals and basis set were validated when consistently producing optimized structures with high accuracy results for <sup>1</sup>H and <sup>13</sup>C chemical shift calculations of two other biaryls. This study highly recommends the IEFPCM/B3LYP, B3PW91, mPW1PW91 or <i>ω</i>B97XD/DGDZVP2 or 6-31G(d,p) level of theory for the geometry optimization step, especially the solvent incorporation, which would lead to high accuracy <sup>1</sup>H/<sup>13</sup>C calculation. This work would assist in the fully structural assignments of biaryls and provide insights into in-solution biaryl conformations.
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Generalized Gradient Approximation Made Simple
John P. Perdew, Kieron Burke, Matthias Ernzerhof · Physical Review Letters · 1996 · 203.9K citations · Full text
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