Huang Xinchuan, Schwenke David W, Lee Timothy J
NASA Ames Research Center, Moffett Field, California 94035-1000, USA.
J Chem Phys. 2008 Dec 7;129(21):214304. doi: 10.1063/1.3025885.
A global potential energy surface (PES) that includes short and long range terms has been determined for the NH(3) molecule. The singles and doubles coupled-cluster method that includes a perturbational estimate of connected triple excitations and the internally contracted averaged coupled-pair functional electronic structure methods have been used in conjunction with very large correlation-consistent basis sets, including diffuse functions. Extrapolation to the one-particle basis set limit was performed and core correlation and scalar relativistic contributions were included directly, while the diagonal Born-Oppenheimer correction was added. Our best purely ab initio PES, denoted "mixed," is constructed from two PESs which differ in whether the ic-ACPF higher-order correlation correction was added or not. Rovibrational transition energies computed from the mixed PES agree well with experiment and the best previous theoretical studies, but most importantly the quality does not deteriorate even up to 10 300 cm(-1) above the zero-point energy (ZPE). The mixed PES was improved further by empirical refinement using the most reliable J=0-2 rovibrational transitions in the HITRAN 2004 database. Agreement between high-resolution experiment and rovibrational transition energies computed from our refined PES for J=0-6 is excellent. Indeed, the root mean square (rms) error for 13 HITRAN 2004 bands for J=0-2 is 0.023 cm(-1) and that for each band is always <or=0.06 cm(-1). For J=3-5 the rms error is always <or=0.15 cm(-1). This agreement means that transition energies computed with our refined PES should be useful in the assignment of new high-resolution NH(3) spectra and in correcting mistakes in previous assignments. Ideas for further improvements to our refined PES and for extension to other isotopolog are discussed.
已确定了包含短程和长程项的NH₃分子的全局势能面(PES)。单双耦合簇方法(包括对连接三重激发的微扰估计)和内收缩平均耦合对泛函电子结构方法已与非常大的包含弥散函数的相关一致基组结合使用。进行了外推到单粒子基组极限的操作,并直接纳入了核心相关和标量相对论贡献,同时添加了对角玻恩-奥本海默修正。我们最好的纯从头算PES(记为“混合”)由两个PES构建而成,这两个PES在是否添加ic-ACPF高阶相关修正方面有所不同。从混合PES计算出的振转跃迁能量与实验结果以及之前最好的理论研究结果吻合良好,但最重要的是,即使在高于零点能(ZPE)10300 cm⁻¹的情况下,其质量也不会恶化。通过使用HITRAN 2004数据库中最可靠的J = 0 - 2振转跃迁进行经验性优化,进一步改进了混合PES。高分辨率实验与从我们优化后的PES计算出的J = 0 - 6振转跃迁能量之间的一致性非常好。实际上,对于HITRAN 2004数据库中J = 0 - 2 的13个谱带,均方根(rms)误差为0.023 cm⁻¹,并且每个谱带的误差始终≤0.06 cm⁻¹。对于J = 3 - 5,rms误差始终≤0.15 cm⁻¹。这种一致性意味着用我们优化后的PES计算出的跃迁能量将有助于新的高分辨率NH₃光谱的归属以及纠正先前归属中的错误。文中还讨论了进一步改进我们优化后的PES以及扩展到其他同位素分子的思路。