Structural determination of a highly stable metal-organic framework with possible application to interim radioactive waste scavenging: Hf-UiO-66
2012
High-resolution synchrotron radiation x-ray powder diffraction (HR-XRPD) combined with Hf $L$3-edge extended x-ray absorption fine structure allowed us to determine the structure of a Hf-UiO-66 metal-organic framework (MOF) showing that it is isoreticular to Zr-UiO-66 MOF [Cavka et al., J. Am. Chem. Soc. 130, 13850 (2008).]. Thermal gravimetric measurements (coupled with mass spectroscopy) and temperature-dependent synchrotron radiation XRPD proved the high thermal stability of the Hf-UiO-66 MOF. The Langmuir surface area (849 m${}^{2}/$g) combined with the high stability of the UiO-66 framework and with the high neutron absorption cross section of Hf suggest that among all microporous crystalline materials the Hf-UiO-66 MOF possesses the physical and chemical requirements for the interim storage of radioactive waste in a much safer way than is currently available. The first results proving the synthesis of a MOF material with UiO-66 topology realized by a B-containing linker are also reported, allowing a further improvement of the neutron shielding power of this class of materials.
Keywords:
- Nuclear magnetic resonance
- Neutron radiation
- Neutron capture
- Metal-organic framework
- Extended X-ray absorption fine structure
- X-ray absorption spectroscopy
- Physics
- Inorganic chemistry
- Langmuir
- Gravimetric analysis
- Powder diffraction
- Condensed matter physics
- Microporous material
- waste disposal
- Physical chemistry
- X-ray crystallography
- Thermal stability
- Correction
- Source
- Cite
- Save
- Machine Reading By IdeaReader
99
References
156
Citations
NaN
KQI