The low-lying excitations of polydiacetylene
arXiv:cond-mat/0103238 · doi:10.1103/PhysRevB.64.035208
Abstract
The Pariser-Parr-Pople Hamiltonian is used to calculate and identify the nature of the low-lying vertical transition energies of polydiacetylene. The model is solved using the density matrix renormalisation group method for a fixed acetylenic geometry for chains of up to 102 atoms. The non-linear optical properties of polydiacetylene are considered, which are determined by the third-order susceptibility. The experimental 1Bu data of Giesa and Schultz are used as the geometric model for the calculation. For short chains, the calculated E(1Bu) agrees with the experimental value, within solvation effects (ca. 0.3 eV). The charge gap is used to characterise bound and unbound states. The nBu is above the charge gap and hence a continuum state; the 1Bu, 2Ag and mAg are not and hence are bound excitons. For large chain lengths, the nBu tends towards the charge gap as expected, strongly suggesting that the nBu is the conduction band edge. The conduction band edge for PDA is agreed in the literature to be ca. 3.0 eV. Accounting for the strong polarisation effects of the medium and polaron formation gives our calculated E(nBu) ca. 3.6 eV, with an exciton binding energy of ca. 1.0 eV. The 2Ag state is found to be above the 1Bu, which does not agree with relaxed transition experimental data. However, this could be resolved by including explicit lattice relaxation in the Pariser- Parr-Pople-Peierls model. Particle-hole separation data further suggest that the 1Bu, 2Ag and mAg are bound excitons, and that the nBu is an unbound exciton.
LaTeX, 23 pages, 4 postscript tables and 8 postscript figures
References in corpus (1)
Cited by in corpus (14)
- The density-matrix renormalization group
- Electron-electron interaction effects on optical excitations in semiconducting single-walled carbon nanotubes
- Universal properties of quasi-one-dimensional excitons in semiconducting single-walled carbon nanotubes and -conjugated polymers
- Investigation of metal-insulator like transition through the ab initio density matrix renormalization group approach
- The Density Matrix Renormalization Group for finite Fermi systems
- Theory of excited state absorptions in phenylene-based -conjugated polymers
- Optical projection and spatial separation of spin entangled triplet-pairs from the S1 (21Ag-) state of pi-conjugated systems
- Correlated Electronic Properties of Some Graphene Nanoribbons: A DMRG Study
- Excited states in poly-diacetylene chains: A Density-matrix-renormalization-group study
- Large scale numerical investigation of excited states in poly(phenylene)
- Dynamical simulations of charged soliton transport in conjugated polymers with the inclusion of electron-electron interactions
- Density-matrix-renormalization-group study of excitons in poly-diacetylene chains
- Exact Wave Packet Dynamics of Singlet Fission in Unsubstituted and Substituted Polyene Chains within Long-Range Interacting Models
- Tunable Optoelectronic Properties of Triply-Bonded Carbon Molecules with Linear and Graphyne Substructures