标题: Zindo/CI方法计算得到电子激发任务中的轨道跃迁组态系数之和大于了0.5是为什么 [打印本页] 作者Author: cqu_xiaoq 时间: 2019-1-24 14:33 标题: Zindo/CI方法计算得到电子激发任务中的轨道跃迁组态系数之和大于了0.5是为什么 老师您好,看了您关于电子激发任务中轨道跃迁贡献的计算的帖子后,检查了自己计算电子激发后轨道跃迁对应的组态系数,发现其平方之和大于0.5,使用的是一个单独计算Zindo的程序,也是用高斯,具体详情我还不太懂这个程序是不是高斯另出的(A Users Guide to ZINDO -- a Comprehensive Semi-Empirical SCF/CI Package. This is one of the most versatile SCF/CI programs available and as a consequence, it has a great number of options. It can perform PPP, EHT, IEHT, CNDO and INDO type calculations. This handout is a (hopefully) straightforward guide to using this program. If you have any suggestions on how to make this handout more understandable, please feel free to contact any of the authors listed below.
Closed shell CNDO program
M. Zerner and C. Warren Uppsala 1969
Closed shell INDO program
M.C. Zerner and J.E. Ridley Guelph 1972
Open shell UHF INDO program
M.C. Zerner and A.D. Bacon Guelph 1975 )这个括号内容是计算Zindo的手册开头的一点内容;我计算得到的值大于0.5,反而接近于1,这个是怎么考虑的呢?我得到的响应跃迁系数程序给出的格式如下:(CI VECTOR 24, IRREP = 1 A :
-0.49032( 322, 0-> 332, 0(0)) -0.74807( 328, 0-> 332, 0(0)))另外,还请问老师,这个跃迁轨道后面那个0是什么意思呢?
请老师指导。谢谢老师!