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Article Abstract

A single-source-precursor approach was developed to synthesize uranium-based materials outside of the typically-studied oxides. This approach allows for shorter reaction times, milder reaction conditions, and control over the chemicals present in synthesis. To this end, the first homoleptic uranium thioamidate complex was synthesized as a precursor for US materials. Pyrolysis of the thioamidate results in decomposition an alkene elimination pathway and formation of γ-US, which has historically been hard to access without the need for a secondary sulfur source. Despite the oxophilicity of uranium, the method successfully forms US without the inclusion of oxygen in the bulk final product. These findings are supported by simultaneous thermal analysis, elemental analysis, powder X-ray diffraction, and uranium L-edge X-ray absorption fine-structure spectroscopy. This work represents the first example of a single-source precursor approach to target and synthesize actinide materials other than the oxides.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11339939PMC
http://dx.doi.org/10.1039/d4sc03422hDOI Listing

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Formation of uranium disulfide from a uranium thioamidate single-source precursor.

Chem Sci

August 2024

Chemical Sciences Division, Lawrence Berkeley National Laboratory Berkeley CA 94720 USA

A single-source-precursor approach was developed to synthesize uranium-based materials outside of the typically-studied oxides. This approach allows for shorter reaction times, milder reaction conditions, and control over the chemicals present in synthesis. To this end, the first homoleptic uranium thioamidate complex was synthesized as a precursor for US materials.

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