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Theoretical Determination of the Dissociation Energy of Molecular Hydrogen

机译:分子氢解离能的理论确定

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The dissociation energy of molecular hydrogen is determined theoretically with a careful estimation of error bars by including nonadiabatic, relativistic, and quantum electrodynamics (QED) corrections. The relativistic and QED corrections were obtained at the adiabatic level of theory by including all contributions of the order α~2 and α~3 as well as the major (one-loop) α~4 term, where a is the fine-structure constant. The computed α~0, α~2, α~3, and α~4 components of the dissociation energy of the H2 isotopomer are 36 118.7978(2), -0.5319(3), -0.1948(2), and -0.0016(8) cm~(-1), respectively, while their sum amounts to 36 118.0695(10) cm~(-1), where the total uncertainty includes the estimated size (±0.0004 cm~(-1)) of the neglected relativistic nonadiabatic/recoil corrections. The obtained theoretical value of the dissociation energy is in excellent agreement with the most recent experimental determination 36 118.0696(4) cm~(-1) [J. Liu et al. J. Chem. Phys. 2009, 130, 174 306]. This agreement would have been impossible without inclusion of several subtle QED contributions which have not been considered, thus far, for molecules. A similarly good agreement is observed for the leading vibrational and rotational energy differences. For the D2 molecule we observe, however, a small disagreement between our value 36 748.3633(9) cm~(-1) and the experimental result 36 748.343(10) cm~(-1) obtained in a somewhat older and less precise experiment [Y. P. Zhang et al. Phys. Rev. Lett. 2004, 92, 203003]. The reason of this discrepancy is not known.
机译:理论上,通过包括非绝热,相对论和量子电动力学(QED)校正,可以通过仔细估计误差线来确定分子氢的解离能。相对论和QED校正是在绝热理论水平上获得的,包括所有α〜2和α〜3阶的贡献以及主要的(单环)α〜4项,其中a是精细结构常数。 H2同位素异构体的离解能的计算出的α〜0,α〜2,α〜3和α〜4分量分别为36 118.7978(2),-0.5319(3),-0.1948(2)和-0.0016( 8)cm〜(-1),它们的总和为36 118.0695(10)cm〜(-1),其中总不确定度包括被忽略相对论的估计大小(±0.0004 cm〜(-1))非绝热/反冲校正。解离能的理论值与最近的实验测定值36 118.0696(4)cm〜(-1)极为吻合[J.刘等。 J.化学物理2009,130,174 306]。如果不包括分子迄今尚未考虑的几个微妙的QED贡献,就不可能达成这一协议。对于领先的振动和旋转能量差异,观察到相似的良好一致性。然而,对于D2分子,我们观察到我们的值36 748.3633(9)cm〜(-1)与在较旧且不太精确的实验中获得的实验结果36748.343(10)cm〜(-1)之间存在细微的差异。 [是的。 P.Zhang等。物理莱特牧师2004,92,203003]。这种差异的原因尚不清楚。

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