High-Pressure Reactivity of Kr and F2—Stabilization of Krypton in the +4 Oxidation State
Abstract
1. Introduction
2. Results
2.1. Pressures Up to 50 GPa
2.2. The 50–200 GPa Pressure Range
3. Discussion
4. Materials and Methods
Supplementary Materials
Acknowledgments
Author Contributions
Conflicts of Interest
References
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| Phase | Type | Kr–F | Kr–Kr | F–F |
|---|---|---|---|---|
| Kr | Atomic (3D) | - | 2.68–2.75 | - |
| Kr6F | 2.29–2.39 | 2.58–2.77 | 2.78 | |
| Kr4F | 2.31–2.34 | 2.62–2.70 | 2.68 | |
| Kr2F | 2D | 2.29 | 2.51–2.56; 2.83–2.84 | 2.21 |
| KrF | 1D | 2.27–2.33 | 2.29; 2.78–2.90 | 2.29 |
| KrF2 | Molecular (0D) | 1.80 | 2.66 | 2.19 |
| KrF4 | 1.80 | 3.57 | 2.00 | |
| F2 | - | - | 1.42 |
| Ng | NgF2 | NgF4 | NgF6 | Ref. |
|---|---|---|---|---|
| Ar | 58 (> 200) | > 200 | n.d. | [30] |
| Kr | amb. (180) | 15 | > 200 | this work |
| Xe | amb. (81) | amb. | amb. | [44] |
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Kurzydłowski, D.; Sołtysiak, M.; Dżoleva, A.; Zaleski-Ejgierd, P. High-Pressure Reactivity of Kr and F2—Stabilization of Krypton in the +4 Oxidation State. Crystals 2017, 7, 329. https://doi.org/10.3390/cryst7110329
Kurzydłowski D, Sołtysiak M, Dżoleva A, Zaleski-Ejgierd P. High-Pressure Reactivity of Kr and F2—Stabilization of Krypton in the +4 Oxidation State. Crystals. 2017; 7(11):329. https://doi.org/10.3390/cryst7110329
Chicago/Turabian StyleKurzydłowski, Dominik, Magdalena Sołtysiak, Aleksandra Dżoleva, and Patryk Zaleski-Ejgierd. 2017. "High-Pressure Reactivity of Kr and F2—Stabilization of Krypton in the +4 Oxidation State" Crystals 7, no. 11: 329. https://doi.org/10.3390/cryst7110329
APA StyleKurzydłowski, D., Sołtysiak, M., Dżoleva, A., & Zaleski-Ejgierd, P. (2017). High-Pressure Reactivity of Kr and F2—Stabilization of Krypton in the +4 Oxidation State. Crystals, 7(11), 329. https://doi.org/10.3390/cryst7110329

