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Nuclear magnetic shielding for hydrogen in selected isolated molecules

机译:选定隔离分子中氢的核磁屏蔽

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摘要

We present the results of gas-phase NMR measurements designed to yield a new experimental value for the absolute 1H magnetic shielding for an isolated hydrogen molecule and its deuterium isotopomers. The results are based on the original method of direct shielding measurements (Jackowski et al., 2010) and the density dependence of 1H, 2H, and 3He NMR frequencies for molecular hydrogen and atomic helium-3. The absolute isotropic magnetic shielding measured for molecular hydrogen, σ0(H2), is 26.293(5) ppm at 300 K, within experimental error of previous measurements based on spin-rotation data and quantum chemistry computations, 26.289(2) ppm (Sundholm and Gauss, 1997), and recent ab initio calculations. We also report isotope effects in shielding for H2, HD, and D2 molecules that are consistent with theoretical predictions. In addition, gas-phase 1H chemical shifts extrapolated to zero density have been measured for numerous small molecules. Our results yield precise absolute shielding data that will be useful in establishing benchmark computational chemistry methods for calculating rovibrational averaged magnetic shielding.
机译:我们目前的气相NMR测量结果旨在为分离出的氢分子及其氘同位素异构体的绝对1H磁屏蔽产生新的实验值。结果基于直接屏蔽测量的原始方法(Jackowski等,2010)以及分子氢和原子氦3的1H,2H和3He NMR频率的密度依赖性。分子氢的绝对各向同性磁屏蔽σ0(H2)在300 K时为26.293(5)ppm,在先前基于自旋旋转数据和量子化学计算得出的实验误差26.289(2)ppm(Sundholm和高斯(1997)和最近的从头算起。我们还报告了同位素对H2,HD和D2分子的屏蔽作用,与理论预测相符。此外,对于许多小分子,已测量出推断为零密度的气相1H化学位移。我们的结果产生了精确的绝对屏蔽数据,这将有助于建立基准计算化学方法来计算振动平均磁屏蔽。

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