Topic summary

Metal-organic framework

Metal-organic framework

Extracted from the Wikipedia article Metal–organic framework.

Nuclear wasteform materials

With an increased public awareness and concern regarding radioactive contamination, there has been an increased interest in the development of new pathways for the capture, containment, and disposal of nuclear waste, which has largely been generated through the operation of nuclear power plants and continued decommissioning of nuclear weapons. One of the largest challenges currently recognized within the nuclear waste sector is the development and synthesis of novel materials capable of long-term containment and selective capture of actinides. Thus, metal-organic frameworks have emerged as a promising material towards this application; their remarkable modularity, high surface area, selective binding affinities, and customizable topology/crystallinity allow for a material with tunable, on-demand properties and high structural stability. These properties allow for the design of a framework that connects material properties with changes in structure at the atomic level, providing insight into the processes that these materials rely upon. For example, metal-organic frameworks tend to have high structural stability, as evidenced by their crystallinity. This has been applied towards nuclear waste by demonstrating that metal-organic frameworks, specifically a zirconium-based framework, resist prolonged exposure to gamma-rays, a deeply penetrating, hazardous form of radiation known to be emitted by radioactive substances such as 241Am, while retaining crystallinity. There are several known methods by which metal-organic frameworks have been used to sequester radionuclides. Foremost is the incorporation of radionuclides into the metal-organic framework as the metal nodes. This effectively captures the actinides by incorporating them into the rigid crystal structure itself, locking it in place. The incoperation of actinides as metal nodes can be achieved through a variety of methods, including synthesis, metal-node extension, and cation exchange. Actinide-containing metal-organic frameworks can be synthesized directly from actinide salts, allowing for direct incorporation without further or previous modification required. Additionally, the metal-node can be extended, allowing for a combination of actinides and transition metals to serve as the nodes simultaneously. Finally, actinides can be incorporated into the metal node through cation exchange; a previously-synthesized metal-organic framework is exposed to actinide cations, where the radionuclides are allowed to slowly replace the transition metal as the metal nodes, incorporating themselves into the crystal itself.