<div class="csl-bib-body">
<div class="csl-entry">Feng, B., Ibesich, M., Hainz, D., Waidhofer, D., Veit-Öller, M., Trunner, C., Stummer, T., Foster, M., Nemetz, M., Welch, J. M., Villa, M., Sterba, J. H., Musilek, A., Renz, F., & Steinhauser, G. (2023). Development of a novel passive monitoring technique to showcase the 3D distribution of tritiated water (HTO) vapor in indoor air of a nuclear facility. <i>Environmental Science and Technology</i>, <i>57</i>(48), 20024–20033. https://doi.org/10.1021/acs.est.3c05783</div>
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dc.identifier.issn
0013-936X
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/192353
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dc.description.abstract
Tritiated water (HTO), a ubiquitous byproduct of the nuclear industry, is a radioactive contaminant of major concern for environmental authorities. Although understanding spatiotemporal heterogeneity of airborne HTO vapor holds great importance for radiological safety as well as diagnosing a reactor's status, comprehensive HTO distribution dynamics inside nuclear facilities has not been studied routinely yet due to a lack of appropriate monitoring techniques. For current systems, it is difficult to simultaneously achieve high representativeness, sensitivity, and spatial resolution. Here, we developed a passive monitoring scheme, including a newly designed passive sampler and a tailored analytical protocol for the first comprehensive 3D distribution characterization of HTO inside a nuclear reactor facility. The technique enables linear sampling in any environment at a one-day resolution and simultaneous preparation of hundreds of samples within 1 day. Validation experiments confirmed the method's good metrological properties and sensitivity to the HTO's spatial dynamics. The air in TU Wien's reactor hall exhibits a range of 3H concentrations from 75-946 mBq m-3 in the entire 3D matrix. The HTO release rate estimated by the mass-balance model (3199 ± 306 Bq h-1) matches the theoretical calculation (2947 ± 254 Bq h-1), suggesting evaporation as the dominant HTO source in the hall. The proposed method provides reliable and quality-controlled 3D monitoring at low cost, which can be adopted not only for HTO and may also inspire monitoring schemes of other indoor pollutants.
en
dc.language.iso
en
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dc.publisher
American Chemical Society (ACS)
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dc.relation.ispartof
Environmental Science and Technology
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dc.rights.uri
http://creativecommons.org/licenses/by/4.0/
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dc.subject
3D spatial distribution
en
dc.subject
environmental radioactivity
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dc.subject
indoor air pollution
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dc.subject
nuclear industry
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dc.subject
passive sampler
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dc.subject
tritium
en
dc.title
Development of a novel passive monitoring technique to showcase the 3D distribution of tritiated water (HTO) vapor in indoor air of a nuclear facility