| Literature DB >> 32397475 |
Md Al Mamunur Rashid1, Dini Hayati1, Kyungwon Kwak2, Jongin Hong1.
Abstract
Two donor-π-spacer-acceptor (D-π-A) organic dyes were designed as photochromic dyes with the same π-spacer and acceptor but different donors, based on their electron-donating strength. Various stEntities:
Keywords: azobenzene; density functional theory; dye-sensitized solar cells
Year: 2020 PMID: 32397475 PMCID: PMC7279488 DOI: 10.3390/nano10050914
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1(a) Molecular structure of the dyes, and optimized geometries for trans (E) and cis (Z) structures of 2-cyano-3-(4′-(4-(dimethylamino)phenyl)diazenyl)-[1,1′-biphenyl]-4-yl)acrylic acid (DMAC) and 2-cyano-3-(4′-(4-(diphenylamino)phenyl)diazenyl)-[1,1′-biphenyl]-4-yl)acrylic acid (DPAC) as (b) isolated dyes and (c) dye/TiO2 complexes. The titanium, nitrogen, carbon, oxygen, and hydrogen atoms are shown in the legend.
Figure 2Optimized bidentate chelating mode and adsorption energies of DMAC and DPAC dyes on a (TiO2)9 anatase cluster calculated at the B3LYP level using the 6-31G(d,p) basis sets for non-metals and LANL2DZ basis sets with ECP for the Ti atom.
Structural parameters of DMAC and DPAC as isolated dyes and dye/TiO2 complexes. A schematic representation of the dye is shown below.
| Dye | Bond | Angle (Isolated Dye) | Angle (Dye/TiO2) |
|---|---|---|---|
| N1=N2 | 1.268 | 1.272 | |
| C1-N1=N2-C2 | 179.86 | 178.68 | |
| N3=C6 | 1.375 | 1.368 | |
| C1=N1 | 1.397 | 1.394 | |
| C2=N2 | 1.412 | 1.412 | |
| N1=N2 | 1.255 | 1.261 | |
| C1-N1=N2-C2 | −11.49 | −11.85 | |
| N3=C6 | 1.379 | 1.372 | |
| C1=N1 | 1.42 | 1.412 | |
| C2=N2 | 1.425 | 1.426 | |
| N1=N2 | 1.267 | 1.269 | |
| C1-N1=N2-C2 | 179.90 | −179.99 | |
| N3=C6 | 1.404 | 1.399 | |
| C1=N1 | 1.402 | 1.400 | |
| C2=N2 | 1.414 | 1.415 | |
| N1=N2 | 1.254 | 1.257 | |
| C1-N1=N2-C2 | −12.167 | −10.94 | |
| N3=C6 | 1.407 | 1.408 | |
| C1=N1 | 1.424 | 1.422 | |
| C2=N2 | 1.429 | 1.431 |
Figure 3Frontier molecular orbitals of trans and cis isomers of DMAC and DPAC as (a) isolated dyes and (b) dye/TiO2 complexes.
Maximum absorption wavelengths (λmax), oscillator strengths (f), excited state transition characteristics, nature of the transitions for the most relevant transitions of the electronic absorption bands, and light-harvesting efficiencies (LHEs) of the dyes.
| Dye | Excited State | Transition Assignment (%) | Oscillator Strength, | λmax | LHE |
|---|---|---|---|---|---|
| π | H-L (66.6%) | 2.0486 | 430 | 0.9911 | |
| n | H-L+1 (52.9%) | 0.2647 | 457 | 0.4564 | |
| π | H-L (60.2%) | 0.9926 | 347 | 0.8983 | |
| π | H-L (65.9%) | 1.8015 | 440 | 0.9475 | |
| n | H-L+1 (51.4) | 0.2583 | 471 | 0.4483 | |
| π | H-L (64.4%) | 0.7985 | 341 | 0.8411 | |
| H-L (82.6%) | 2.3227 | 440 | 0.9953 | ||
| H-L+1 (30.1%) | 0.3276 | 458 | 0.5297 | ||
| H-L (53.8%) | 1.1195 | 364 | 0.9241 | ||
| H-L (85.7%) | 2.3189 | 452 | 0.9951 | ||
| H-L+1 (28.8%) | 0.2844 | 468 | 0.4805 | ||
| H-L (64.3%) | 0.8237 | 350 | 0.8499 |
Figure 4UV-Vis absorption spectra of cis and trans isomers of DMAC and DPAC as (a) isolated dyes and (b) dye/TiO2 complexes.
Figure 5Molecular orbital energy diagrams of trans and cis isomers of DMAC and DPAC as isolated dyes and dye/TiO2 complexes.
HOMO and LUMO energy values and energy gaps, excited state lifetimes, dipole moments, exciton binding energies, and coupling constants of the isolated dyes and dye/TiO2 complexes.
| Dye | HOMO | LUMO | HOMO-LUMO | Ex-State Lifetime, | Dipole Moment, | Exciton Binding Energy, | Coupling Constant, |
|---|---|---|---|---|---|---|---|
| −5.2341 | −2.7576 | 2.477 | 1.43 | 11.61 | 0.41 | 0.6171 | |
| −5.2276 | −2.6858 | 2.541 | 1.99 | 12.20 | 0.89 | 0.6138 | |
| −5.2270 | −2.8066 | 2.420 | 1.52 | 8.67 | 0.47 | 0.6135 | |
| −5.2034 | −2.7217 | 2.482 | 2.57 | 9.53 | 0.93 | 0.6017 | |
| −5.2398 | −3.3065 | 1.936 | 1.39 | 22.5 | 0.88 | 0.6199 | |
| −5.2352 | −3.2997 | 1.936 | 1.95 | 28.7 | 1.33 | 0.6176 | |
| −5.2200 | −3.3206 | 1.900 | 1.10 | 21.4 | 0.98 | 0.6101 | |
| −5.1734 | −3.3051 | 1.868 | 1.74 | 26.2 | 1.42 | 0.5867 |
Figure 6Molecular electrostatic potentials of cis and trans isomers of DMAC and DPAC as (a) isolated dyes and (b) dye/TiO2 complexes.
Figure 7Electron density difference maps for cis and trans isomers of DMAC and DPAC as (a) isolated dyes and (b) dye/TiO2 complexes.
NBO analysis results for metal-free organic dyes in the ground state. Here, qDonor, qπ-spacer, and qAcceptor denote the total amount of natural charges on the donor group, π-spacer, and acceptor group, respectively.
| Dyes | qDonor | qπ-spacer | qAcceptor | ∆qD-A |
|---|---|---|---|---|
| 0.3078 | −0.1959 | −0.1119 | 0.4197 | |
| 0.2523 | −0.1395 | −0.1127 | 0.3650 | |
| 0.2784 | −0.1711 | −0.1073 | 0.3858 | |
| 0.2090 | −0.1010 | −0.1079 | 0.3169 |
Electron injection free energy (∆Ginject), ground (E) and excited (E) state oxidation potentials, vertical transition energy (E), total regeneration energy (∆G), and dipole moment perpendicular to the surface of TiO2 (μ) of DMAC and DPAC as isolated dyes and dye/TiO2 complexes.
| Dye | − |
|
|
|
|
|
|
|---|---|---|---|---|---|---|---|
| E-DMAC | −1.649 | 5.234 | 2.351 | 2.883 | 0.434 | 12.2 | 1.243 |
| Z-DMAC | −1.399 | 5.228 | 2.602 | 2.626 | 0.428 | 11.6 | 1.314 |
| E-DPAC | −1.661 | 5.227 | 2.339 | 2.888 | 0.427 | 9.5 | 1.193 |
| Z-DPAC | −1.351 | 5.203 | 2.649 | 2.555 | 0.403 | 8.7 | 1.278 |
| E-DMAC/TiO2 | −1.578 | 5.239 | 2.422 | 2.817 | 0.439 | 24.1 | 0.694 |
| Z-DMAC/TiO2 | −1.365 | 5.235 | 2.636 | 2.601 | 0.435 | 19.9 | 0.700 |
| E-DPAC/TiO2 | −1.663 | 5.220 | 2.337 | 2.883 | 0.420 | 21.1 | 0.680 |
| Z-DPAC/TiO2 | −1.389 | 5.173 | 2.611 | 2.562 | 0.373 | 17.4 | 0.691 |