999精品在线视频,手机成人午夜在线视频,久久不卡国产精品无码,中日无码在线观看,成人av手机在线观看,日韩精品亚洲一区中文字幕,亚洲av无码人妻,四虎国产在线观看 ?

Relativistic and distorted wave effects on Xe 4d electron momentum distributions?

2017-08-30 08:25:24MinfuZhao趙敏福XuShan單旭ShanshanNiu牛姍姍andXiangjunChen陳向軍
Chinese Physics B 2017年9期

Minfu Zhao(趙敏福),Xu Shan(單旭),Shanshan Niu(牛姍姍),and Xiangjun Chen(陳向軍)

1 Department of Experiment and Practical Training Management,West Anhui University,Lu’an 237012,China

2 Hefei National Laboratory for Physical Sciences at the Microscale and Department of Modern Physics,University of Science and Technology of China, Hefei 230026,China

Relativistic and distorted wave effects on Xe 4d electron momentum distributions?

Minfu Zhao(趙敏福)1,2,?,Xu Shan(單旭)2,Shanshan Niu(牛姍姍)2,and Xiangjun Chen(陳向軍)2

1 Department of Experiment and Practical Training Management,West Anhui University,Lu’an 237012,China

2 Hefei National Laboratory for Physical Sciences at the Microscale and Department of Modern Physics,University of Science and Technology of China, Hefei 230026,China

The relativistic and distorted wave effects are investigated for the electron momentum distributions of Xe 4d electrons. The theoretical results show good agreements with the experimental data measured previously with electron momentum spectroscopy.The distorted wave effect and the relativistic effect are found to play important roles in the low and high momentum regions,respectively.

relativistic effect,distorted wave effect,electron momentum distributions

1.Introduction

Relativistic effects of high-Z atoms and molecules containing high-Z atoms have been attracting a great deal of research interest.[1–15]The relativistic effects can be divided into a direct relativistic effect and an indirect relativistic effect.[3]The direct relativistic effect includes kinematical and spin–orbit coupling effects.The kinematical one is caused by electrons moving with high speeds near the heavy nucleus,which results in the spatial contractions of orbits s and p and the energy loses.The spin–orbit(SO)coupling effect is a result of interaction between the electron’s spin magnetic and orbit moments,leading to the energy-level splitting.The indirect relativistic effect refers to the contraction caused by the inner orbit which can block the heavy nuclear more severely,leading to the outer orbits d and f expanding in the location space and improving the energy.

Photoelectron spectroscopy,nuclear magnetic resonance (NMR),and Compton scattering are the basic experimental methods to explore the relativistic effects.On the other hand, electron momentum spectroscopy(EMS)has its unique advantages in the study of the relativistic effects,which can show the relativistic effects not only on the ionization energies but also on the orbital wave functions of a heavy atom via the measurements of electron momentum distribution.This is particularly true for xenon,for which a significant number of electron momentum spectroscopy studies(Leung and Brion,[4]Cook et a1.,[5,6]Braidwood et al.,[7]Brunger et al.,[8]Brion et al.,[9]Ren et al.[10])and photoelectron spectroscopy(PES)measurements(Gelius,[11]Svensson et al.,[12]Krause et al.[13])have been carried out.The PES works of Gelius[11]and Svensson et a1.[12]have examined these core states in detail;the importance of these studies lies in their accurate determination of the binding energies of the 4d5/2and 4d3/2states.

In 1984,Cook et al.[5,6]for the first time studied the relativistic effects on the outermost layer of the Xe atom’s 5p orbital in view of the wave function by the EMS technique.Due to the poor energy resolution(~1.6 eV)of their spectrometer, the SO splitting bands(with an energy spread~1.3 eV)about the ionization of Xe 5p orbital could not be resolved clearly; the electron momentum distributions and the branching ratio of two splitting components 5p3/2and 5p1/2were obtained by the spectral deconvolutions.[5,6]In 1994,Brunger et al.[8]reported the momentum distribution about Xe 4d electrons.Although they observed peak splitting(with an energy spread~1.97 eV)between 4d5/2and 4d3/2states,they did not find the difference of SO coupling effects on the electron momentum distributions of these two states.In 1998,Brion et al.[9]reported,using the EMS technique,the distorted wave effect on the low momentum distribution region of Xe 4d electrons, but they did not go into the details of the SO coupling effect. In 2006,using the EMS spectrometer with an energy spread of 1.2 eV,Ren et al.measured the electron momentum distributions of the SO splitting components 4d5/2and 4d3/2of Xe and found the variations of the branch ratio between these two components with the change of the incident electron energy(E0=1200 eV,1600 eV,2400 eV).[10]Their observations were explained with a combination of the distorted wave effect and the relativistic effect,but they did not identify the different roles of these two effects.[10]

In this paper,we calculate the wave function of Xe 4d5/2and 4d3/2with the relativistic density functional theory (RDFT),then obtain the electron momentum distributions ofthe two components of Xe 4d5/2and 4d3/2electrons and the branch ratios of the angular-resolved differential cross section. In comparison to the low region of the electron momentum distributions between the experimental[10]and theoretical results, the distorted wave Born approximation(DWBA)is used because of the well-known distorted wave effect on the 4d electron.

2.Theoretical calculation

(e,2e)as a single-collision ionization process can be studied with EMS,which is a kinematical complete measurement technique.Completely observed quantity of this reaction is a triple differential scattering cross section(TDCS),which is expressed in atomic unit as[16,17]

Under the distorted wave Born approximation(DWBA), the ionization amplitude is expressed as follows:[18]

where ψiis the wave function of the target’s initial state bound electron which can be taken from the Hartree–Fock wave function of Clementi and Roetti’s article.χ(+)(k0)is the distorted wave function of the incident electron,and(j=1, 2)is the distorted wave function of the outgoing electron.The corresponding triple differential crosssection can be expressed as[19]

When calculating the distorted wave with partial wave method,we adopt equivalent local central potential V00(r)to represent the distorting effect of the electron.The equivalent local basic potential V00(r)=VD(r)+VE(r),in which direct potential VD(r)is[20]

where Nnlis the electron occupation number of orbital nl,and r>is the larger one of r and r′.Exchange potential VE(r)takes the modified semi-classical exchange potential(MSCEP)[21]

where E is the system energy,and ρ(r)is the electron density.

In the case that the impact energy is larger(E0>20εf), the plane wave impulse approximation(PWIA)is applicable and thus the triple differential cross section is[17,18,22]

For the heavy element atoms or molecules containing heavy elements,relativistic effects have an obvious impact on the wave function,we need to use the theory of relativity quantum chemical method to calculate it.The scalar relativistic (SR)method is used here for treating the relativistic effect on Xe 4d electrons.The theoretical calculations are performed with the density functional program ADF.[24,25]The B3LYP density functional and the relativity ZORT[26]/TZ2P basis set are adopted in the calculations.The distorted wave effect is considered by using the distorted wave program with the DWBA method[27]and the SR wave functions obtained in the above B3LYP calculations.Non-relativistic(NR)calculations based on Eq.(7)are also carried out for comparison.

3.Results and discussion

The theoretical electron momentum distributions of Xe 4d5/2and 4d3/2are shown in Figs.1(a)–1(c)and compared with the experimental ones obtained at the impact energy E0=1200 eV,1600 eV,and 2400 eV.[10]The resolution due to Δθ=0.7°and Δ?=1.9°[10]is considered in the normalization of the theoretical momentum distributions.In the high momentum region(>1.0 a.u.),the theoretical and experimental distributions match very well;but distinct differences can be found in the low momentum region(<1.0 a.u.).As proposed before,the obvious turn-up distributions are caused by the distorted wave effect.[9]Figures 1(d)–1(f)present the cross-section ratios for the 4d5/2and 4d3/2electrons.The wave functions having the same quantum numbers n andlbut different total angular momentum j(which is related to the relativistic effect)are different,[5]as shown in Figs.1(d)–1(f), the ratios vary with the electron momentum.Although the theoretical ratios predict the similar tendency of the experimental data,the discrepancies are obvious and further theoretical calculations at the higher level are needed.

Fig.1.We use the relativistic density functional method to calculate the xenon atoms 4d5/2,4d3/2 orbital of electron momentum distribution and xenon atoms 4d5/2:4d3/2 the relationship between the ratio of scattering cross section and momentum,choosing the relativity ZORT/TZ2P base group.Panels(a),(d);(b),(e);and(c),(f)are experimental values of impact energies of 1200 eV,1600 eV,and 2400 eV.The experimental data are taken from Ref.[10].

Fig.2.Electron momentum distribution of Xe 4d orbital with DWBA calculation.NR uses the Clementi basis function,and SR uses the basis function obtained by scalar relativistic B3LYP/TZ2P.The solid dot, triangle,and the square are experimental values of the impact energies of 1200 eV,1600 eV and 2400 eV,respectively.[10]

To further elucidate the distorted wave effect,in particular,in the low electron momentum region,the experimental momentum profiles by summation of two SO splitting components are compared with the NR and SR theoretical results in Fig.2.The dynamic influences arising from the different impact energies(E0=1200 eV,1600 eV,and 2400 eV)indicate the weakening of the distorted wave effect with the increase of the impact energy.In Fig.2,both NR and SR theoretical results can give a good description of the distorted wave effect in the low momentum region,but there are some overestimations at the high momentum region.In comparison with the NR distributions,the SR ones are a little lower and closer to the experimental data in the high momentum region.As pointed out before in this paper,the larger discrepancies between the theoretical and experimental data in the high momentum region are largely due to the stronger relativistic effect.

4.Conclusion

The electron momentum distributions of Xe 4d electrons are investigated theoretically by considering the relativistic and distorted wave effects,and compared with the EMS experimental data recorded at different impact energies.[10]The distorted wave effect is significant in the low momentum regions of both spin–orbit splitting 4d5/2and 4d3/2ionization states,while the relativistic effect is remarkable in the high momentum regions.

[1]Pyykk? P 1988 Chem.Rev.88 563

[2]Reiher M and Hess B A 2000 Modern Methods and Algorithms of Quantum Chemistry(Jülich:Jülich Research Center)

[3]Liu W J 2007 Progress in Chem.19 833

[4]Leung K T and Brion C E 1983 Chpm Phys.82 87

[5]Cook J P D,Mitroy J and Weigold E 1984 Phys.Rev.Lett.52 1116

[6]Cook J P D,McCarthy I E,Mitroy J and Weigold E 1986 Phys.Rev.A 33 211

[7]Braidwood S,Brunger M J and Weigold E 1993 Phys.Rev.A 47 2927

[8]Brunger M J,Braidwood S W,McCarthy I E and Weigold E 1994 J. Phys.B 27 L597

[9]Brion C E,Zheng Y,Rolke J and Neville J J 1998 J.Phys.B 31 L223

[10]Ren X G,Ning C G and Deng J K 2006 Phys.Rev.A 73 042714

[11]Gelius U 1974 J.Electron Sgeetrose.5 984

[12]Svensson S,Erikson B,Martensson N,Wendin G and Gelius U 1988 J. Electron.Spectrosc.47 327

[13]Krause M O,Whitfield S B,Caldwell C D,Wu J Z,van der Meulen P, de Lange C A and Hansen R W C 1992 J.Electron.Spectrosc.58 79

[14]Chen X J,Li Z J and Shan X 2008 Physics 37 576

[15]Liu K,Ning C G and Deng J K 2010 Chin.Phys.Lett.27 73403

[16]Brion C E 1986 Int.J.Quantum Chem.29 1397

[17]McCarthy I E and Weigold E 1991 Rep.Prog.Phys.54 789

[18]McCarthy I E and Weigold E 1976 Phys.Rep.27 275

[19]Zhang X,Whelan C T,Walters H R J,Allan R J,Bickert P,Hink W and Sch?nberger S 1992 J.Phys.B:At.Mol.Opt.Phys.25 4325

[20]Khajuria Y,Chen L Q and Chen X J 2002 Phys.Rev.A 65 042706

[21]Gianturco F A and SCialla S 1987 J.Phys.B:At.Mol.Phys.20 3171

[22]Weigold E and McCarthy I E 1999(New York:Kulwer Academic/Plenum Publishers)

[23]Duffy P,Chong D P and Casida M E 1994 Phys.Rev.A 50 4707

[24]Guerra C F,Snijders J G,te Velde G and Baerends E J 1998 Theor. Chem.Acc.99 391

[25]Velde G T,Bickelhaupt F M,Baerends E J,Guerra C F,Van Gisbergen S J A,Snijders J G and Ziegler T 2001 J.Comput.Chem.22 931

[26]Vanlenthe E,Baerends E and Snijders J 1994 J.Chem.Phys.101 9783

[27]McCarthy I E and Weigold 1988 Rep.Prog.Phys.51 301

14 April 2017;revised manuscript

23 May 2017;published online 18 July 2017)

10.1088/1674-1056/26/9/093103

?Project supported by the National Natural Science Foundation of China(Grant Nos.11327404 and U1432118)and the Natural Science Research Programme of Education Department of Anhui Province,China(Grant Nos.KJ2013A260 and KJ2016A749).

?Corresponding author.E-mail:zhaomf@wxc.edu.cn

?2017 Chinese Physical Society and IOP Publishing Ltd http://iopscience.iop.org/cpb http://cpb.iphy.ac.cn

主站蜘蛛池模板: 久久99蜜桃精品久久久久小说| 欧美日韩动态图| 91色老久久精品偷偷蜜臀| 国产真实乱子伦视频播放| 国产真实乱了在线播放| 国产a在视频线精品视频下载| 亚洲国产成人自拍| 国产午夜人做人免费视频中文| 欧美在线中文字幕| 91麻豆国产精品91久久久| 91精品人妻一区二区| 亚洲一区二区三区香蕉| 92精品国产自产在线观看| 重口调教一区二区视频| 四虎精品黑人视频| 日韩二区三区| 真实国产乱子伦视频| 毛片久久久| 熟妇丰满人妻| 亚洲天堂网2014| 国产微拍一区二区三区四区| 在线观看国产小视频| 欧美一区二区自偷自拍视频| a级毛片免费网站| 91在线国内在线播放老师| 欧美v在线| 免费欧美一级| 99精品热视频这里只有精品7| 亚洲国产91人成在线| 亚洲精品在线91| 99在线视频精品| 手机精品视频在线观看免费| 丁香六月激情综合| 国产高清在线精品一区二区三区 | 国产电话自拍伊人| 日韩无码黄色| 五月婷婷欧美| 2048国产精品原创综合在线| 操美女免费网站| 久久亚洲黄色视频| 特级做a爰片毛片免费69| 亚洲日本在线免费观看| 亚洲精品制服丝袜二区| 狠狠v日韩v欧美v| 九九热精品免费视频| 精品色综合| 激情无码字幕综合| 亚洲视频在线观看免费视频| 18禁影院亚洲专区| 亚洲国产日韩欧美在线| 国产三级成人| 波多野结衣无码视频在线观看| a天堂视频| 午夜精品区| 韩日免费小视频| 国产在线视频自拍| 久久精品91麻豆| 色综合天天操| 国产精品一区二区在线播放| 欧美日韩导航| 亚洲一级毛片| 国产高清在线精品一区二区三区 | 91破解版在线亚洲| 一区二区三区成人| 国产亚洲精品无码专| 国产精品亚洲αv天堂无码| 亚洲精品桃花岛av在线| 色噜噜在线观看| 欧美a级在线| 日韩精品无码不卡无码| 亚州AV秘 一区二区三区| 97综合久久| 国产精品视频导航| 四虎影视无码永久免费观看| 国产黄在线观看| 欧美人在线一区二区三区| 欧美性猛交一区二区三区| 欧美性色综合网| 18禁不卡免费网站| 中文字幕欧美日韩高清| 一级毛片a女人刺激视频免费| 在线观看无码a∨|