MOFs and COFs for Radionuclide and Nuclear‐Waste Treatment
Abstract
Abstract The ever‐growing energy demand, driven by rapid industrialization and global urbanization, has escalated the development of sustainable nuclear power generation. Nuclear fission and fuel production generate several radioactive byproducts including 79 Se, 85 Kr, 90 Sr, 99 Tc, 127 Xe, 129/131 I, 137 Cs, 235 U, which pose great threat upon environmental infiltration. The sustainable development of nuclear energy relies on the easy and adequate accessibility of nuclear‐fuels, like uranium, alongside safe and efficient management of the nuclear fuel cycles. To this end, reticular materials such as metal–organic frameworks (MOFs) and covalent–organic frameworks (COFs) have emerged as versatile sorbent platforms for efficient treatment of various radionuclides owing to their structural tunability and target specificity. Given that momentous advances have been made in radionuclide treatment by reticular materials in the past few decades, it is important to systematically review and summarize the recent advancements in this field. In this review, a brief overview of the different classes of radioactive‐wastes, and the principles of radioactive waste treatment is first presented. The prerequisites in materials designing are then discussed, followed by the recent progress in MOFs‐ and COFs‐materials toward radioactive‐waste‐treatment. Finally, future perspectives on the unresolved scientific and technical challenges are proposed, aiming to fast‐track the translation of these materials toward real‐world implementation.
Article Details
Authors (11)
Subhajit Dutta
BCMaterials, Basque Center for Materials, Applications and Nanostructures UPV/EHU Science Park Leioa Vizcaya 48940 Spain
Erlantz Lizundia
Joanna Goscianska
Faculty of Chemistry Adam Mickiewicz University Poznan 61‐614 Poland
Romy Ettlinger
EaStCHEM School of Chemistry, Purdie Building, North Haugh, St Andrews KY16 9ST, U.K.
Evelyn Ploetz
Department of Chemistry and Center of NanoScience (CeNS) Ludwig‐Maximilians‐Universität München Munich Germany
Yaser E. Greish
Department of Chemistry United Arab Emirates University Al‐Ain 15551 UAE
Abbas Khaleel
Department of Chemistry United Arab Emirates University Al‐Ain 15551 UAE
Maamar Benkraouda
Department of Physics United Arab Emirates University Al‐Ain 15551 UAE
Ahmadreza Ghaffarkhah
Nanomaterials and Polymer Nanocomposites Laboratory School of Engineering University of British Columbia Kelowna BC V1V 1V7 Canada
Mohammad Arjmand
Nanomaterials and Polymer Nanocomposites Laboratory School of Engineering University of British Columbia Kelowna BC V1V 1V7 Canada
Stefan Wuttke
Academic Centre for Materials and Nanotechnology, AGH University of Krakow, al. Adama Mickiewicza 30, Kraków 30-059, Poland