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Integrating Waste Management for Advanced Reactors: The Universal Canister System and Project UPWARDS
When the Department of Energy’s Advanced Research Projects Agency–Energy launched the Optimizing Nuclear Waste and Advanced Reactor Disposal Systems (ONWARDS) program in 2022, it posed a challenge that the nuclear industry had never seriously confronted before: how to design waste management solutions that anticipate the coming shift to advanced reactors and not merely retrofit existing systems built for an older generation of technology. The program’s objectives were ambitious—reduce disposal footprint, enable scalable pathways for unfamiliar waste streams, and build the technical foundations for future disposal—yet also tightly grounded in the realities of emerging nuclear fuel cycles. For the nuclear community, this was a timely call. Advanced reactors were accelerating toward deployment, but the waste management systems needed to support them had not kept pace.
Fredrik Börjesson Sandén, Anna-Elina Pasi, Teemu Kärkelä, Tuula Kajolinna, Christian Ekberg
Nuclear Technology | Volume 212 | Number 1 | January 2026 | Pages 179-197
Regular Research Article | doi.org/10.1080/00295450.2025.2462490
Articles are hosted by Taylor and Francis Online.
Boric acid is expected to play a role in severe nuclear accident chemistry, raising questions about of how it affects the volatile fission products iodine, cesium, and tellurium. Since tellurium and iodine are radiologically related (132Te decays into 132I/132mI with a half-life of 3.17 days) interactions between them are always possible in a severe accident scenario, but research focusing on their interactions is surprisingly scant.
Experiments were undertaken at the VTT Technical Research Center of Finland using a setup involving the volatilization of tellurium, the injection of iodine as a gas, and boric acid and/or CsI dissolved in water and injected with the help of an atomizer. Analysis of the results included measurements with inductively coupled plasma mass spectrometry (ICP-MS), scanning electron microscopy (SEM) and X-ray photoelectron spectroscopy (XPS).
The results indicate that the volatility of tellurium is significantly increased if tellurium, iodine (I2), and boric acid are all present together, which was observed through a heightened concentration of tellurium in the liquid trap following such experiments. Furthermore, the formation of tellurium iodide is possible, as determined by SEM-Energy-dispersive X-ray spectroscopy (SEM-EDS) and supported by XPS. These results imply that studies of tellurium in combination with other relevant species should be continued. There is evidence that their volatility can be affected by one another, but the research into this type of interaction is scant.