Many-body theory calculations of positron binding to halogenated hydrocarbons

被引:4
作者
Cassidy, P. [1 ]
Hofierka, J. [1 ]
Cunningham, B. [1 ]
Rawlins, C. M. [1 ]
Patterson, C. H. [2 ]
Green, D. G. [1 ]
机构
[1] Queens Univ Belfast, Sch Math & Phys, Univ Rd, Belfast BT7 1NN, North Ireland
[2] Trinity Coll Dublin, Sch Phys, Dublin 2, Ireland
基金
欧洲研究理事会;
关键词
Anisotropy - Chlorine compounds - Density functional theory - Dipole moment - Electrons - Fluorination - Halogenation - Hydrocarbons - Ionization potential - Molecular orbitals - Molecules - Polarization - Positrons;
D O I
10.1103/PhysRevA.109.L040801
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Positron binding energies in halogenated hydrocarbons are calculated ab initio using many-body theory. For chlorinated molecules, including planars for which the interaction is highly anisotropic, very good to excellent agreement with experiment and recent density-functional-theory-based model-potential calculations is found. Predictions for fluorinated and brominated molecules are presented. The comparative effect of fluorination, chlorination, and bromination is elucidated by identifying trends within molecular families including dihaloethylenes and halomethanes based on global molecular properties (dipole moment, polarizability, ionization energy). It is shown that relative to brominated and chlorinated molecules, fluorinated molecules generate a less attractive positron-molecule potential due to larger ionization energies and smaller density of molecular orbitals close to the highest occupied molecular orbital, resulting in very weak, or in most cases loss of, positron binding. Overall, however, it is shown that the global molecular properties are not universal predictors of binding energies, exemplified by consideration of CH3Cl vs cis-C2H2F2: Despite the latter having a larger dipole moment, lower ionization energy, and similar polarizability, its binding energy is significantly smaller (25 vs 3 meV, respectively), owing to the important contribution of multiple molecular orbitals to, and the anisotropy of, the positron-molecule correlation potential.
引用
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页数:6
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[Anonymous], See Supplemental Material at, DOI [10.1103/PhysRevA.109.L040801, DOI 10.1103/PHYSREVA.109.L040801]
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[Anonymous], The vPs contribution to the self-energy requires diagonalization of dense matrices of size (N+N-)2, where N+ (N-) is the number of virtual positron (electron) states used. For example, our C2HCl3 calculations have N+N- = 280 800, corresponding to 630 GB of memory. With other memory costs considered, our approach regularly requires more than 1 TB of memory
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