| Literature DB >> 35186652 |
Po-Yuan Shih1,2, Maicol Cipriani3, Christian Felix Hermanns1, Jens Oster1, Klaus Edinger1, Armin Gölzhäuser2, Oddur Ingólfsson3.
Abstract
Motivated by the potential role of molybdenum in semiconductor materials, we present a combined theoretical and experimental gas-phase study on dissociative electron attachment (DEA) and dissociative ionization (DI) of Mo(CO)6 in comparison to focused electron beam-induced deposition (FEBID) of this precursor. The DEA and DI experiments are compared to previous work, differences are addressed, and the nature of the underlying resonances leading to the observed DEA processes are discussed in relation to an earlier electron transmission study. Relative contributions of individual ionic species obtained through DEA and DI of Mo(CO)6 and the average CO loss per incident are calculated and compared to the composition of the FEBID deposits produced. These are also compared to gas phase, surface science and deposition studies on W(CO)6 and we hypothesize that reductive ligand loss through electron attachment may promote metal-metal bond formation in the deposition process, leading to further ligand loss and the high metal content observed in FEBID for both these compounds.Entities:
Keywords: dissociative electron attachment; dissociative ionisation; focused electron beam-induced deposition; molybdenum hexacarbonyl
Year: 2022 PMID: 35186652 PMCID: PMC8822466 DOI: 10.3762/bjnano.13.13
Source DB: PubMed Journal: Beilstein J Nanotechnol ISSN: 2190-4286 Impact factor: 3.649
Figure 1Negative ion yield curves from DEA to Mo(CO)6 in the energy range from about 0–12 eV. From top; formation of [Mo(CO)5]− (m/z 236), [Mo(CO)4]− (m/z 208), [Mo(CO)3]− (m/z 180) and [Mo(CO)2]− (m/z 152).
Experimentally determined peak positions for fragments observed in dissociative electron attachment to Mo(CO)6, compared to literature values [19–20] and the respective thermochemical threshold values calculated at PBE0/ma-def2-TZVP level of theory.
| Anion | Calculated threshold PBE0/ma-def2-TZVP (eV) | Ion yield peaks current study (eV) | Ion yield peaks [ |
Ion yield peaks [ |
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|
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| [Mo(CO)5]− | −0.2 | 0.4 | 2.2 | 0.4 |
| [Mo(CO)4]− | 1.8 | 1.6 and 3.2 | 3.0 | 3.0 |
| [Mo(CO)3]− | 3.9 | 3.7 and 4.4 | 4.1 | 3.9 and 4.7 |
| [Mo(CO)2]− | 6.6 | 8.1 | 7.5 | 10 |
Figure 2Fit to the [Mo(CO)4]− ion yield using three Gaussian functions to represent the 1.65, 2.14 and 3.29 eV resonances observed in the ETS from Giordan et al. [18] (R2 = 0.98).
Figure 3Electron impact ionization mass spectrum for Mo(CO)6 recorded at 70 eV incident electron energy with the sequential carbonyl loss (one to six CO groups) and second ionizations marked with vertical lines.
Relative yields of Mo-containing ions formed by DEA and DI to Mo(CO)6 and average weighted CO loss per DEA and DI incident.
| Fragment | Relative DEA yield | Relative DI yield | |
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| [Mo(CO)6]+ | 264 | — | 1 |
| [Mo(CO)5]+/− | 236 | 1 | 0.15 |
| [Mo(CO)4]+/− | 208 | 0.13 | 0.24 |
| [Mo(CO)3]+/− | 180 | 0.066 | 2.01 |
| [Mo(CO)2]+/− | 152 | 0.0047 | 1.4 |
| [MoCO]+ | 124 | — | 1.25 |
| MoC+ | 108 | — | 0.43 |
| Mo+ | 96 | — | 1.27 |
| [Mo(CO)3]++ | 90 | — | 0.4 |
| [Mo(CO)2]++ | 76 | — | 0.48 |
| [MoCO]++ | 62 | — | 0.46 |
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| Average weighted CO loss | 1.23 | 3.7 | |
Elemental composition of Mo(CO)6 FEBID deposits obtained by EDX measurement of a 1 μm2 pad deposited on a 100 nm thick polycrystalline gold substrate on a 4 inch silicon wafer.
| Element | Atom % |
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|
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| C | 37.7 |
| Si | 0.6 |
| O | 20.5 |
| Mo | 41.1 |
| Au | 0.1 |
| Total: | 100 |
Figure 4Left: EDX spectrum. Right: SEM image of FEBID pad (1 μm2) Mo(CO)6.