Abstract
Nuclear energy is a key component of a global, low-carbon energy future. One of the challenges facing large-scale deployment of nuclear power is the long-term disposition of used nuclear fuel. Due to the political and technical challenges of siting deep geologic storage facilities, reprocessing of used nuclear fuel is desirable to reduce the total volume and decay heat of waste requiring long-term storage, enabling efficient usage of geologic storage repositories. However nuclear fuel reprocessing is complicated by intense multi-component radiation fields that degrade solvent systems that are used for this purpose. Resulting radiolytic degradation can result in reduced performance over time, and generation of additional waste. Thus, an understanding of the radiation-induced chemistry of these reprocessing solvent systems is crucial to for the development of new, radiation-resistant processes for efficiently treating used nuclear fuel. Controlled irradiation experiments combined with high-performance chromatography and mass spectrometry have provided comprehensive knowledge of radiolytic degradation pathways and kinetics, which is needed to predict the effect of radiation-induced chemistry on the performance of the nuclear fuel reprocessing technology. This talk will give an overview of recent progress in research on the radiation chemistry of fuel reprocessing molecules conducted by the Idaho National Laboratory Center for Radiation Chemistry Research (CR2) in conjunction with the Molecular Mass Spectrometry and Chromatography group.
| Original language | English |
|---|---|
| State | Published - May 1 2020 |
| Event | Idaho State University Department of Chemistry Seminar Series - Pocatello, United States Duration: Mar 6 2020 → Mar 6 2020 |
Conference
| Conference | Idaho State University Department of Chemistry Seminar Series |
|---|---|
| Country/Territory | United States |
| City | Pocatello |
| Period | 03/6/20 → 03/6/20 |
Keywords
- Radiation Chemistry
- TODGA
- DEHBA
INL Publication Number
- INL/MIS-20-60173
- 54133
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