Please wait a minute...
Chin. Phys. B, 2011, Vol. 20(4): 043101    DOI: 10.1088/1674-1056/20/4/043101
ATOMIC AND MOLECULAR PHYSICS Prev   Next  

B3$\varSigma$u-X3$\varSigma$g- transition in selenium dimer: ab initio multireference configuration interaction calculations

Yan Bing(闫冰)a), Liu Li-Li(刘立莉)a), Wei Chang-Li(魏长立)a), Guo Jing(郭晶)a),and Zhang Yu-Juan(张玉娟)b)
a Institute of Atomic and Molecular Physics, Jilin University, Changchun 130012, China; b Changchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun 130033, China
Abstract  Theoretical investigation of low-lying electronic states and $B^{3}\varSigma _{\rm u}^{ - }$--$X^{3}\varSigma _{\rm g}^{ - }$ transition properties of selenium dimer using size-extensivity singly and doubly excitation multireference configuration interaction theory with  nonrelativistic all-electron basis set and relativistic effective core potential plus its split valence basis set is presented in this paper.  The spectroscopic constants of ten low-lying $\varLambda $--$S$ bound states have been obtained and compared with experiments. Spin--orbit  calculations for coupling between $B^{3}\varSigma _{\rm u}^{ - }$ sates and repulsive $^{1}\varPi _{\rm u}$, $^{5}\varPi _{\rm u}$ states have  been made to interpret the predissociation mechanisms of the $B^{3}\varSigma _{\rm u}^{ - }$ state. The lifetimes of $B^{3}\varSigma _{\rm u}^{  - }$ ($\nu=0\sim 6$) have been calculated with scalar relativistic effects included or excluded, respectively, and reasonably agree with  experimental values.
Keywords:  potential energy curve      lifetime      spin–orbit coupling      selenium dimer  
Received:  06 July 2010      Revised:  04 January 2011      Accepted manuscript online: 
PACS:  31.15.ae (Electronic structure and bonding characteristics)  
  31.15.aj (Relativistic corrections, spin-orbit effects, fine structure; hyperfine structure)  
  31.15.ag (Excitation energies and lifetimes; oscillator strengths)  
  31.15.Df  
Fund: Project supported by the National Natural Science Foundation of China (Grant No. 10604022), Chinese National Fusion Project for ITER (Grant No. 2010GB104003) and the Fundamental Research Funds for the Central Universities (Grant No. 200903369).

Cite this article: 

Yan Bing(闫冰), Liu Li-Li(刘立莉), Wei Chang-Li(魏长立), Guo Jing(郭晶), and Zhang Yu-Juan(张玉娟) B3$\varSigma$u-X3$\varSigma$g- transition in selenium dimer: ab initio multireference configuration interaction calculations 2011 Chin. Phys. B 20 043101

[1] Leone P R and Kosnik K G 1977 Appl. Phys. Lett. 30 346
[2] Wheeler M D, Newman S M and Orr-Ewing A J 1998 J. Chem. Phys. 22 1998
[3] Kiljunen T, Eloranta J and Kunttu H 2000 J. Chem. Phys. 17 2000
[4] Yan B, Pan S F, Wang Z G and Yu J H 2005 Acta Phys. Sin. 54 5618 (in Chinese)
[5] Gibson N D, Kortshangen U and Lawler J E 1996 J. Appl. Phys. 79 7523
[6] Herzberg G (translated by Wang D C) 1983 Molecular Spectra and Molecular Structure I: Spectra of Diatomic Molecular (Beijing: Science Press) p. 462 (in Chinese)
[7] Prosser S J, Barrow R F, Effantin C, Incan J and Verges 1982 J. Phys. B 15 4151
[8] Setzer K D, Dorn A, Lorenz and Fink E H 2003 J. Mol. Spectr. 221 13
[9] Heaven M, Miller T A, English J H and Bondybey V E 1982 Chem. Phys. Lett. 91 251
[10] Stolyarov A, Kuzmenko N E, Harya Y A and Ferber R S 1989 J. Mol. Spectr. 137 251
[11] Gouedard G and Lehmann 1975 Comput. Rend. Acad. Sci. (Paris) 280 B471
[12] Martinez E, Basterrechea F J, Puyuelo P and Castano F 1995 Chem. Phys. Lett. 236 83
[13] Bhanuprakash K, Hirsch G and Buenker R J 1991 Mol. Phys. 72 1185
[14] Heinemann C, Koch W, Linder G, Reinen D and Widmark P 1996 Phys. Rev. A 54 1979
[15] Yan B, Pan S F and Guo Q Q 2008 Chin. Phys. B 17 3318
[16] Yan B and Feng W 2010 Chin. Phys. B 19 033303
[17] Balabanov N B and Peterson K A 2005 J. Chem. Phys. 123 064107
[18] Peterson K A, Figgen D, Goll E, Stoll H and Dolg M 2003 J. Chem. Phys. 119 11113
[19] Werner H J, Knowles P J, Lindh R, Manby F R, Schütz M and others MOLPRO version 2006.1, a package of ab initio programs, see http://www.molpro.net
[20] Kat^o Hajime and Baba Masaaki 1995 Chem. Rev. 95 2311
[1] Spectroscopic study of B2Σ+–X1 2Π1/2 transition of electron electric dipole moment candidate PbF
Ben Chen(陈犇), Yi-Ni Chen(陈旖旎), Jia-Nuan Pan(潘佳煖), Jian-Ping Yin(印建平), and Hai-Ling Wang(汪海玲). Chin. Phys. B, 2022, 31(9): 093301.
[2] Quantum oscillations in a hexagonal boron nitride-supported single crystalline InSb nanosheet
Li Zhang(张力), Dong Pan(潘东), Yuanjie Chen(陈元杰), Jianhua Zhao(赵建华), and Hongqi Xu(徐洪起). Chin. Phys. B, 2022, 31(9): 098507.
[3] Relativistic calculations on the transition electric dipole moments and radiative lifetimes of the spin-forbidden transitions in the antimony hydride molecule
Yong Liu(刘勇), Lu-Lu Li(李露露), Li-Dan Xiao(肖利丹), and Bing Yan(闫冰). Chin. Phys. B, 2022, 31(8): 083101.
[4] Theoretical study on the transition properties of AlF
Yun-Guang Zhang(张云光), Ling-Ling Ji(吉玲玲), Ru Cai(蔡茹),Cong-Ying Zhang(张聪颖), and Jian-Gang Xu(徐建刚). Chin. Phys. B, 2022, 31(5): 053101.
[5] Highly accurate theoretical study on spectroscopic properties of SH including spin-orbit coupling
Shu-Tao Zhao(赵书涛), Xin-Peng Liu(刘鑫鹏), Rui Li(李瑞), Hui-Jie Guo(国慧杰), and Bing Yan(闫冰). Chin. Phys. B, 2021, 30(7): 073104.
[6] Configuration interaction study on low-lying states of AlCl molecule
Xiao-Ying Ren(任笑影), Zhi-Yu Xiao(肖志宇), Yong Liu(刘勇), and Bing Yan(闫冰). Chin. Phys. B, 2021, 30(5): 053101.
[7] Optical properties of core/shell spherical quantum dots
Shuo Li(李硕), Lei Shi(石磊), Zu-Wei Yan(闫祖威). Chin. Phys. B, 2020, 29(9): 097802.
[8] Exploration and elaboration of photo-induced proton transfer dynamical mechanism for novel 2-[1,3]dithian-2-yl-6-(7aH-indol-2-yl)-phenol sensor
Lei Xu(许磊), Tian-Jie Zhang(张天杰), Qiao-Li Zhang(张巧丽), Da-Peng Yang(杨大鹏). Chin. Phys. B, 2020, 29(5): 053102.
[9] Vibronic spectra of aluminium monochloride relevant to circumstellar molecule
Jian-Gang Xu(徐建刚), Cong-Ying Zhang(张聪颖), Yun-Guang Zhang(张云光). Chin. Phys. B, 2020, 29(3): 033102.
[10] Reliability of organic light-emitting diodes in low-temperature environment
Saihu Pan(潘赛虎), Zhiqiang Zhu(朱志强), Kangping Liu(刘康平), Hang Yu(于航), Yingjie Liao(廖英杰), Bin Wei(魏斌), Redouane Borsali, and Kunping Guo(郭坤平). Chin. Phys. B, 2020, 29(12): 128503.
[11] Theoretical insights into photochemical ESITP process for novel DMP-HBT-py compound
Guang Yang(杨光)†, Kaifeng Chen(陈凯锋), Gang Wang(王岗), and Dapeng Yang(杨大鹏). Chin. Phys. B, 2020, 29(10): 103103.
[12] Impact of proton-induced alteration of carrier lifetime on single-event transient in SiGe heterojunction bipolar transistor
Jia-Nan Wei(魏佳男), Chao-Hui He(贺朝会), Pei Li(李培), Yong-Hong Li(李永宏), Hong-Xia Guo(郭红霞). Chin. Phys. B, 2019, 28(7): 076106.
[13] Quantal studies of sodium 3p←3s photoabsorption spectra perturbed by ground lithium atoms
N Lamoudi, F Talbi, M T Bouazza, M Bouledroua, K Alioua. Chin. Phys. B, 2019, 28(6): 063202.
[14] Low-lying electronic states of aluminum monoiodide
Xiang Yuan(袁翔), Shuang Yin(阴爽), Yi Lian(连艺), Pei-Yuan Yan(颜培源), Hai-Feng Xu(徐海峰), Bing Yan(闫冰). Chin. Phys. B, 2019, 28(4): 043101.
[15] Exploring the effect of aggregation-induced emission on the excited state intramolecular proton transfer for a bis-imine derivative by quantum mechanics and our own n-layered integrated molecular orbital and molecular mechanics calculations
Huifang Zhao(赵慧芳), Chaofan Sun(孙朝范), Xiaochun Liu(刘晓春), Hang Yin(尹航), Ying Shi(石英). Chin. Phys. B, 2019, 28(1): 018201.
No Suggested Reading articles found!