CO:LiCl(001)-(1X1)表面电子激发态及其随时演化
PDF下载 (210)陈武超,王能平.CO:LiCl(001)-(1X1)表面电子激发态及其随时演化[J].宁波大学学报(理工版),2020,33(1):101-109.DOI:
CHEN Wuchao,WANG Nengping.The excited electronic state and its time evolution of CO adsorbed on LiCl(001)-(1X1)[J].Journal of Ningbo University(Natural Science & Engineering Edition),2020,33(1):101-109.DOI:
| Title: | The excited electronic state and its time evolution of CO adsorbed on LiCl(001)-(1X1) |
| 作者: | 陈武超, 王能平 |
| Author(s): | CHEN Wuchao, WANG Nengping |
| 关键词: | 准粒子能带结构; GW近似; 电子激发态; BS方程; 随时演化 |
| Keywords: | quasiparticle band structure; GW approximation; excited electronic states; BSE; time evolution |
| 分类号: | O485 |
| 文献标识码: | A |
| 摘要: | 采用多体摄动理论研究CO:LiCl(001)-(1X1)表面的激发态性质、CO分子激子态随时演化及其寿命. 首先用局域密度近似的密度泛函理论计算CO分子吸附在LiCl(001)-(1X1)表面的几何结构; 随后运用GW近似研究LiCl块体、LiCl(001)-(1X1)干净表面以及CO:LiCl(001)-(1X1)表面的准粒子能带结构, 引入电子-空穴相互作用, 求解二粒子格林函数的Bethe-Salpeter方程(BS方程), 并得出其电子-空穴激发态及光学吸收谱, 将计算得到的光吸收谱与实验数据进行比较; 最后基于吸附系统CO:LiCl(001)-(1X1)的BS方程的解, 求解含时薛定谔方程得出的分子激发态的随时演化. 因衬底和吸附分子之间的耦合作用, CO分子激子态在随时演化的初始阶段呈现非常快的衰减, 其寿命仅为0.75fs. CO分子激子态的空穴大幅度地向衬底转移, 而激子态的电子仍然滞留在CO分子上. |
| Abstract: | The many-body perturbation theory is used to study the properties of excited electronic states of the CO molecule adsorbed on LiCl(001)-(1X1) surface, and further investigate the time evolution of the CO exciton state as well as the lifetime of the exciton state. At first, density-functional theory within local density approximation is used to calculate the ground state geometry of CO adsorbed on LiCl(001)-(1X1) surface. Next, the quasiparticle band structures of bulk LiCl, of the LiCl(001)-(1X1) surface, and of CO adsorbed on the surface are evaluated within the GW approximation. Moreover, by taking the electron-hole interaction into consideration, the electron-hole excitation states and their optical spectra are obtained from the solution of the Bethe-Salpeter equation within the theory of the two-particle Green function. The obtained optical spectra are compared with available experimental results. Finally, based on the solution of the BSE for the adsorbate system CO:LiCl(001)-(1X1), the time evolution of the CO exciton state is studied using the time-dependent Schr?dinger equation. At the initial stage, the CO exciton state exhibits a very fast decay due to the coupling of the adsorbate with the substrate, and the lifetime of the CO exciton state is only 0.75 fs. The electron of the molecule exciton state remains on the molecule while its hole is mostly transferred into the LiCl substrate. |
| 参考文献 /References: | [1] Pietzsch A, F?hlisch A, Beye M, et al. Towards time resolved core level photoelectron spectroscopy with femtosecond X-ray free-electron lasers[EB/OL]. [2019-03-04]. https://iopscience.iop.org/article/10.1088/1367-2630/10/3/033004/pdf. [2] Chulkov E V, Borisov A G, Gauyacq J P, et al. Electronic excitations in metals and at metal surfaces[J]. Chemical Reviews, 2006, 106(10):4160-4206. [3] Shibuta M, Hirata N, Matsui R, et al. Charge separation at the molecular monolayer surface: Observation and control of the dynamics[J]. The Journal of Physical Chemistry Letters, 2012, 3(8):981-985. [4] Reinert F, Huefner S. Photoemission spectroscopy—from early days to recent applications[EB/OL]. [2019-03-04]. https://iopscience.iop.org/article/10.1088/1367-2630/7/1/097/pdf. [5] Kirkegaard C, Kim T K, Hofmann Ph. Self-energy determination and electron-phonon coupling on Bi(110)[EB/OL]. [2019-03-04]. https://iopscience.iop.org/article/10.1088/1367-2630/7/1/099/pdf. [6] Matzdorf R. Investigation of line shapes and line intensities by high-resolution UV-photoemission spectroscopy—Some case studies on noble-metal surfaces[J]. Surface Science Reports, 1998, 30(4/5):153-206. [7] Dose V. Momentum-resolved inverse photoemission[J]. Surface Science Reports, 1985, 5(8):337-378. [8] Smith N V. Inverse photoemission[EB/OL]. [2019-03-04]. https://iopscience.iop.org/article/10.1088/0034-4885/51/9/003/pdf. [9] Giesen K, Hage F, Himpsel F J, et al. Two-photon photoemission via image-potential states[J]. Physical Review Letters, 1985, 55(3):300-303. [10] Schoenlein R W, Fujimoto J G, Eesley G L, et al. Femtosecond studies of image-potential dynamics in metals[J]. Physical Review Letters, 1988, 61:2596-2599. [11] Güdde J, H?fer U. Femtosecond time-resolved studies of image-potential states at surfaces and interfaces of rare-gas adlayers[J]. Progress in Surface Science, 2005, 80:49-91. [12] Hedin L. New method for calculating the one-particle Green’s function with application to the electron-gas problem[J]. Physical Review, 1965, 139:A796-A823. [13] Hedin L, Lundqvist S. Effects of Electron-Electron and Electron-Phonon Interactions on the One-Electron States of Solids[M]. New York: Academic Press Incorporated, 1969:1. [14] Sarria I, Osma J, Chulkov E V, et al. Self-energy of image states on copper surfaces[J]. Physical Review B, 1999, 60:11795-11803. [15] Yi Z, Ma Y, Rohlfing M, et al. Quasiparticle band structures and lifetimes in noble metals using Gaussian orbital basis sets[EB/OL]. [2019-03-04]. https://journals.aps.org/prb/pdf/10.1103/PhysRevB.81.125125. [16] Springer M, Aryasetiawan F, Karlsson K. First-principles T-matrix theory with application to the 6 eV satellite in Ni[J]. Physical Review Letters, 1998, 80:2389-2392. [17] Zhukov V P, Chulkov E V, Echenique P M. GW+T theory of excited electron lifetimes in metals[EB/OL]. [2019-03-04]. https://journals.aps.org/prb/pdf/10.1103/PhysRevB.72.155109. [18] Shumay I L, H?fer U, Reu? Ch, et al. Life times of image-potential states on Cu(100) and Ag(100) measured by femtosecond time-resolved two-photon photoemission[J]. Physical Review B,1998, 58:13974-13981. [19] Borisov A G, Gauyacq J P, Kazansky A K. Scattering by alkali adsorbates as a decay mechanism for image potential states on Cu surfaces[J]. Surface Science, 2002, 505:260-270. [20] Kevan S D. Direct measure of surface impurity scattering by angle-resolved photoemission[J]. Physical Review B, 1986, 33:4364-4366. [21] Wang X Y, Paiella R, Osgood R M Jr. Two-dimensional electron-scattering processes on Na-dosed Cu(111): A two-photon photoemission study[J]. Physical Review B, 1995, 51:17035-17039. [22] Wallauer W, Fischer R, Fauster Th. Influence of adsorbates on the image states of Pd(111)[J]. Surface Science, 1996, 364:297-302. [23] Boger K, Weinelt M, Fauster Th. Scattering of hot electrons by adatoms at metal surfaces[EB/OL]. [2019-03-04]. https://journals.aps.org/prl/pdf/10.1103/PhysRevLett.92.126803. [24] Fauster Th, Weinelt M. Carrier dynamics on surfaces studied by two-photon photoemission[J]. Surface Science, 2005, 593:1-11. [25] Borisov A G, Gauyacq J P, Kazansky A K, et al. Long-lived excited states at surfaces: Cs/Cu(111) and Cs/Cu(100) systems[J]. Physical Review Letters, 2001, 86:488-491. [26] Borisov A G, Gauyacq J P, Chulkov E V, et al. Lifetime of excited electronic states at surfaces: Comparison between the alkali/Cu(111) systems[EB/OL]. [2019-03-04]. https://journals.aps.org/prb/pdf/10.1103/PhysRevB.65.235434. [27] Gauyacq J P, Borisov A G. Excited electron transfer between a core-excited Ar*(2p3/2-14s) atom and the metal substrate in the Ar/Cu(111) system[EB/OL]. [2019-03-04]. https://journals.aps.org/prb/pdf/10.1103/PhysRevB.69.235408. [28] Vijayalakshmi S, Foehlisch A, Hennies F, et al. Surface projected electronic band structure and adsorbate charge transfer dynamics: Ar adsorbed on Cu(111) and Cu(100)[J]. Chemical Physics Letters, 2006, 427:91-95. [29] 孔维孟, 杨宗献, 张喜林, 等. 单原子Pt增强α-Mo2C(0001)抗硫中毒特性机理的第一性原理研究[J]. 原子与分子物理学报, 2018, 35:383-388. [30] 梁冬梅, 冷霞, 马玉臣. 多体格林函数方法对g-CN激发态特性的研究[J]. 中国科学: 化学, 2016, 46(1):126-132. [31] Onida G, Reining L, Rubio A. Electronic excitations: Density-functional versus many-body Green’s-function approaches[J]. Reviews of Modern Physics, 2002, 74:601-659. [32] 周晓林, 宗江琴, 王海燕, 等. Ne-CH4分子间相互作用势的局域密度近似计算[J]. 原子与分子物理学报, 2004, 21:525-528. [33] Hahn P H, Schmidt W G, Bechstedt F. Bulk excitonic effects in surface optical spectra[EB/OL]. [2019-03-04]. https://journals.aps.org/prl/pdf/10.1103/PhysRevLett.88.016402. [34] Wang N P, Rohlfing M, Krüger P, et al. Quasiparticle band structure and optical spectrum of LiF(001)[EB/OL]. [2019-03-04]. https://journals.aps.org/prb/pdf/10.1103/PhysRevB.67.115111. [35] 黄美纯. 激发态过程的多体理论方法[J]. 发光学报, 2005, 26(3):273-284. [36] 潮晴, 王能平. 锂的卤化物LiX(X=F,Cl,Br,I)的镜像势态[J]. 宁波大学学报(理工版), 2019, 32(4):73-80. [37] Strinati G. Dynamical shift and broadening of core excitons in semiconductors[J]. Physical Review Letters, 1982, 49:1519-1522. [38] Strinati G. Effects of dynamical screening on resonances at inner-shell thresholds in semiconductors[J]. Physical Review B, 1984, 29:5718-5726. [39] 潘播, 王能平. 基于多体摄动理论的CaO电子能带结构及光吸收谱的研究[J]. 宁波大学学报(理工版), 2017, 30(1):94-98. [40] Wright S, Hasselbrink E. Photodesorption of disilane-physisorbed on hydrogen terminated Si(100) and the dramatic consequences of weak molecular chemisorption[EB/OL]. [2019-03-04]. https://aip.scitation.org/doi/pdf/10.1063/1.1359521. [41] Hohenberg P, Kohn W. Inhomogeous electron gas[J]. Physical Review, 1964, 136:864-871. [42] Kohn W, Sham L J. Self-consistent equations including exchange and correlation effects[J]. Physical Review, 1965, 140:1133-1138. [43] Ceperley D M, Alder B J. Ground state of the electron gas by a stochastic method[J]. Physical Review Letters, 1980, 45:566-569. [44] Hamann D R. Generalized norm-conserving pseudopotentials[J]. Physical Review B, 1989, 40:2980-2987. [45] Rohlfing M, Krüger P, Pollmann J. Efficient scheme for GW quasiparticle band-structure calculations with applications[J]. Physical Review B, 1995, 52:1905-1917. [46] Rohlfing M, Louie S G. Electron-hole excitations and optical spectra from first principles[J]. Physical Review B, 2000, 62:4927-4944. [47] Kunz A B. Study of the electronic structure of twelve alkali halide crystals[J]. Physical Review B, 1982, 26:2056-2069. [48] Eby J E, Teegarden K J, Dutton D B. Ultraviolet absorption of alkali halides[J]. Physical Review, 1959, 116:1099-1105. [49] Ching W Y, Gan F, Huang M Z. Band theory of linear and nonlinear susceptibilities of some binary ionic insulators[J]. Physical Review B, 1995, 52:1596-1611. |
| 备注/Memo: | 收稿日期: 2019-07-29. 宁波大学学报(理工版)网址: http://journallg.nbu.edu.cn/ 基金项目: 国家自然科学基金(11074136). 第一作者: 陈武超(1990-), 女, 山东临沂人, 在读硕士研究生, 主要研究方向: 低维材料激发态. E-mail: 2283832766@qq.com *通信作者: 王能平(1961-), 男, 江西九江人, 研究员, 主要研究方向: 凝聚态理论及计算物理. E-mail: wangnengping@nbu.edu.cn 宁波大学学报(理工版)网址:http://journallg.nbu.edu.cn/ |