| Literature DB >> 29114447 |
Mónica Mendes1, Khrystyna Regeta1, Filipe Ferreira da Silva1, Nykola C Jones2, Søren Vrønning Hoffmann2, Gustavo García3, Chantal Daniel4, Paulo Limão-Vieira1.
Abstract
High-resolution vacuum ultraviolet photoabsorption measurements in the wavelength range of 115-320 nm (10.8-3.9 eV) have been performed together with comprehensive relativistic time-dependent density functional calculations (TDDFT) on the low-lying excited sates of tungsten hexacarbonyl, W(CO)6. The higher resolution obtained reveals previously unresolved spectral features of W(CO)6. The spectrum shows two higher-energy bands (in the energy ranges of 7.22-8.12 eV and 8.15-9.05 eV), one of them with clear vibrational structure, and a few lower-energy shoulders in addition to a couple of lower-energy metal-to-ligand charge-transfer (MLCT) bands reported in the literature before. Absolute photoabsorption cross sections are reported and, where possible, compared to previously published results. On the basis of this combined experimental/theoretical study the absorption spectrum of the complex has been totally re-assigned between 3.9 and 10.8 eV under the light of spin-orbit coupling (SOC) effects. The present comprehensive knowledge of the nature of the electronically excited states may be of relevance to estimate neutral dissociation cross sections of W(CO)6, a precursor molecule in focused electron beam induced deposition (FEBID) processes, from electron scattering measurements.Entities:
Keywords: cross sections; density functional theory (DFT) calculations; focused electron beam induced deposition (FEBID); photoabsorption; tungsten hexacarbonyl
Year: 2017 PMID: 29114447 PMCID: PMC5669226 DOI: 10.3762/bjnano.8.220
Source DB: PubMed Journal: Beilstein J Nanotechnol ISSN: 2190-4286 Impact factor: 3.649
Figure 1High-resolution VUV photoabsorption spectrum of W(CO)6 in the photon energy range of 3.9–10.8 eV. The blue curve has the (right) ordinate set to a maximum of 50 Mb to bring out the rich fine structure in the spectrum.
Figure 2Valence Kohn–Sham orbitals of W(CO)6 in its electronic ground state.
TDDFT vertical transition energies and associated oscillator strengths (f0) of the low-lying “spin–orbit” excited states of W(CO)6 and assignment of the experimental spectrum.
| energya | cross section | band | state | composition in “spin-free” statesb | calculated energy | character | |
| <4.0 | 1T1u | 72% 13T1u 19% 13Eu | 3.458 | 3.7·10−4 | MLCT | ||
| 2T1u | 40% 13Eu 33% 13T2u 26% 13T1u | 3.596 | 1.2·10−4 | MLCT | |||
| 3T1u | 59% 13T2u 40% 13Eu | 3.656 | 4.1·10−5 | MLCT | |||
| 4.317 | 39.4 | I | 4T1u | 91% 11T1u | 4.11 | 0.02 | MLCT |
| 6T1u | 40% 23T1u 38% 13A1u 15% 23Eu | 4.309 | 0.002 | MLCT/IL | |||
| 5.590 | 377.7 | II | 9T1u | 99% 21T1u | 6.106 | 0.93 | MLCT |
| 7.630 | 13.2 | III | 10T1u | 99% 33T1u | 7.965 | 3.2·10−5 | IL |
| 8.35(5) | 16.2 | IV | 11T1u | 27% 33Eu 25% 31T1u 24% 43T1u 23% 33T2u | 8.146 | 0.009 | MLCT |
| 12T1u | 38% 33T2u 37% 43T1u 13% 31T1u 12% 33Eu | 8.264 | 0.005 | MLCT | |||
| 13T1u | 36% 33Eu 32% 43T1u 19% 33T2u 13% 31T1u | 8.329 | 0.004 | MLCT | |||
| 14T1u | 49% 31T1u 25% 33Eu 20% 33T2u | 8.340 | 0.017 | MLCT | |||
| 10.375 | 75.5 | V | 21T1u | 85% 41T1u 14% 63T1u | 10.011 | 0.057 | IL |
| 22T1u | 79% 63T1u 14% 41T1u | 10.036 | 0.009 | IL | |||
| 24T1u | 64% 73T1u 31% 51T1u | 10.211 | 0.012 | IL | |||
| 25T1u | 59% 51T1u 31% 73T1u | 10.242 | 0.021 | IL | |||
| 27T1u | 37% 33A1u 30% 71T1u 17% 61T1u | 10.456 | 0.027 | IL | |||
| 30T1u | 60% 61T1u 20% 71T1u | 10.524 | 0.017 | IL | |||
| 32T1u | 32% 71T1u 27% 73Eu 20% 33A1u | 10.557 | 0.027 | IL | |||
| 33T1u | 43% 73Eu 39% 83Eu | 10.632 | 0.004 | IL | |||
| 34T1u | 52% 83Eu | 10.701 | 0.008 | IL | |||
| 36T1u | 57% 81T1u 22% 93T1u | 10.867 | 0.026 | SBLCT | |||
| 37T1u | 38% 81T1u 33% 93T1u | 10.889 | 0.021 | SBLCT | |||
aThe last decimal of the energy value is given in parenthesis for these less-resolved features. bAccording to the labels of the states reported in Table S1 and Table S2 of Supporting Information File 1.
Figure 3High-resolution VUV photoabsorption spectrum of W(CO)6 in the photon energy range of 3.9–5.0 eV. See text for details on the assignments.
Proposed vibrational assignments in the 4.0−9.0 eV absorption bands of W(CO)6. (b) broad structure; (s) shoulder structure; (w) weak feature. The last decimal of the energy value is given in brackets for these less-resolved features).
| energy | assignment | Δ(ν′2) | Δ(ν′1) |
| 4.04(6) (b,s) | — | — | |
| 4.317 | — | 0.271 | |
| 4.60(2) (s) | — | 0.285 | |
| 6.15(6) (s) | — | — | |
| 6.19(6) (s) | 0.040 | — | |
| 6.24(3) (s) | 0.047 | — | |
| 6.29(7) (s) | 0.054 | — | |
| 6.42(4) (w) | — | 0.228 | |
| 6.471 | 0.047 | 0.228 | |
| 6.515 | 0.044 | 0.218 | |
| 6.567 | 0.052 | — | |
| 6.79(4) (b) | — | 0.227 | |
| 7.16(7) (w,b) | — | — | |
| 7.208 | 0.041 | — | |
| 7.259 | 0.051 | — | |
| 7.315 | 0.056 | — | |
| 7.358 | 0.043 | — | |
| 7.41(1) (b) | 0.053 | 0.244 | |
| 7.496 | — | 0.237 | |
| 7.542 | 0.046 | — | |
| 7.583 | 0.041 | — | |
| 7.630 | 0.047 | 0.219 | |
| 7.672 | 0.042 | — | |
| 7.720 | 0.048 | 0.224 | |
| 7.76(4) (s) | 0.044 | — | |
| 7.80(8) (b) | 0.044 | — | |
| 7.813 | — | — | |
| 7.862 | 0.049 | 0.232 | |
| 7.907 | 0.045 | — | |
| 7.948 | 0.041 | 0.228 | |
| 7.994 | 0.046 | — | |
| 8.03(5) (b) | 0.041 | — | |
| 8.098 | — | — | |
| 8.16(0) (s) | 0.062 | — | |
| 8.21(1) (s) | 0.051 | — | |
| 8.26(0) (s) | 0.049 | — | |
| 8.30(4) (s) | 0.044 | — | |
| 8.35(5) (b) | 0.051 | 0.257 | |
| 8.38(9) (b) | — | 0.178 | |
| 8.574 | — | 0.219 | |
| 8.60(4) (s) | — | 0.215 | |
| 8.79(9) (b) | — | 0.225 | |
| 8.85(6) (w) | — | 0.252 | |
Figure 4High-resolution VUV photoabsorption spectrum of W(CO)6 in the photon energy range of 6.0–9.0 eV. See text for details on the assignments.