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Multireference configuration interaction study of the electronic states of ZrC

机译:ZrC电子态的多参配相互作用研究

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The potential energy curves and spectroscopic constants of the ground and 32 low-lying electronic states of ZrC have been studied by employing multireference configuration interaction methods, in conjunction with relativistic effective core potentials and 5s3p3d1f, 3s3p1d basis sets con Zr and C, respectively. We have determined that the ground state is (3)Sigma(+). However there are two low-lying (1)Sigma(+) states (below 5000 cm(-1)) which strongly interact resulting in avoided crossings. The lowest (1)Sigma(+) state corresponds to a combination of 1 sigma(2) X sigma(2) 1 pi(4) configurations whereas the second is an open shell singlet 1 sigma(2) 2 sigma(1) 3 sigma(1) 1 pi(4). Several avoided crossings were observed, for (1)Pi, (3)Pi, (1)Delta, (3)Sigma(+), and (3)Delta states. We have identified (3)Pi and (1)Pi lying at 4367 and 5797 cm(-1), respectively. The results are in good agreement with the recent experimental findings of Rixon [J. Mol. Spectrosc. 228, 554 (2004)], and indicate that the (3)Pi-(3)Sigma(+), and (1)Pi-(1)Sigma(+), bands located between 16 000-19 000 cm(-1) are extremely complex due to near degeneracy of several (1)Pi and (3)Pi states. We also have identified a (1)Sigma(+) state in the same region that may interfere with the (1)Pi emission bands. The present results not only shed further light into the spectra of ZrC but also predict yet to be observed systems. (c) 2006 American Institute of Physics.
机译:通过采用多参考组态相互作用方法,结合相对论有效核心电势和5s3p3d1f,3s3p1d基组con Zr和C,研究了ZrC的基态和32个低洼电子态的势能曲线和光谱常数。我们确定基态为(3)Sigma(+)。但是,有两个低地(1)Sigma(+)状态(低于5000 cm(-1))会强烈相互作用,从而避免交叉。最低(1)Sigma(+)状态对应于1 sigma(2)X sigma(2)1 pi(4)配置的组合,而第二个是开壳单线态1 sigma(2)2 sigma(1)3 sigma(1)1 pi(4)。对于(1)Pi,(3)Pi,(1)Delta,(3)Sigma(+)和(3)Delta状态,观察到了几个避免的交叉。我们已经确定(3)Pi和(1)Pi分别位于4367和5797 cm(-1)。结果与Rixon的最新实验结果非常吻合[J.大声笑光谱。 228,554(2004)],并指出(3)Pi-(3)Sigma(+)和(1)Pi-(1)Sigma(+)的条带位于16 000-19 000 cm(- 1)由于几种(1)Pi和(3)Pi状态的简并性而极其复杂。我们还确定了同一区域中的(1)Sigma(+)状态可能会干扰(1)Pi发射带。目前的结果不仅为ZrC光谱提供了更多的信息,而且还预测了尚待观察的系统。 (c)2006年美国物理研究所。

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