Hellmann Robert, Gaiser Christof, Fellmuth Bernd, Vasyltsova Tatjana, Bich Eckard
Institut für Thermodynamik, Helmut-Schmidt-Universität/Universität der Bundeswehr Hamburg, Holstenhofweg 85, 22043 Hamburg, Germany.
Physikalisch-Technische Bundesanstalt (PTB), Abbestraße 2-12, 10587 Berlin, Germany.
J Chem Phys. 2021 Apr 28;154(16):164304. doi: 10.1063/5.0047999.
New interatomic potential energy and interaction-induced polarizability curves for two ground-state neon atoms were developed and used to predict the second density, acoustic, and dielectric virial coefficients and the dilute gas shear viscosity and thermal conductivity of neon at temperatures up to 5000 K. The potential energy curve is based on supermolecular coupled-cluster (CC) calculations at very high levels up to CC with single, double, triple, quadruple, and perturbative pentuple excitations [CCSDTQ(P)]. Scalar and spin-orbit relativistic effects, the diagonal Born-Oppenheimer correction, and retardation of the dispersion interactions were taken into account. The interaction-induced polarizability curve, which in this work is only needed for the calculation of the second dielectric virial coefficient, is based on supermolecular calculations at levels up to CCSDT and includes a correction for scalar relativistic effects. In addition to these first-principles calculations, highly accurate dielectric-constant gas thermometry (DCGT) datasets measured at temperatures from 24.5 to 200 K were analyzed to obtain the difference between the second density and dielectric virial coefficients with previously unattained accuracy. The agreement of the DCGT values with the ones resulting from the first-principles calculations is, despite some small systematic deviations, very satisfactory. Apart from this combination of two virial coefficients, the calculated thermophysical property values of this work are significantly more accurate than any available experimental data.
我们开发了两个基态氖原子的新原子间势能和相互作用诱导极化率曲线,并用于预测温度高达5000K时氖的第二密度、声学和介电维里系数以及稀薄气体的剪切粘度和热导率。势能曲线基于高达单、双、三、四阶和微扰五阶激发的超分子耦合簇(CC)计算[CCSDTQ(P)]。考虑了标量和自旋轨道相对论效应、对角玻恩-奥本海默修正以及色散相互作用的延迟。相互作用诱导极化率曲线在本工作中仅用于计算第二介电维里系数,它基于高达CCSDT水平的超分子计算,并包括对标量相对论效应的修正。除了这些第一性原理计算外,我们还分析了在24.5至200K温度下测量的高精度介电常数气体测温法(DCGT)数据集,以获得第二密度和介电维里系数之间的差异,其精度是以前未达到的。尽管存在一些小的系统偏差,但DCGT值与第一性原理计算结果的一致性非常令人满意。除了这两个维里系数的组合外,本工作计算的热物理性质值比任何现有的实验数据都要准确得多。