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27 pages, 1431 KB  
Review
Microplastics as Potential Emerging Vectors for Radon Progeny: A Conceptual Review of Mechanisms, Pathways, and Implications
by Phoka C. Rathebe and Mota Kholopo
Pollutants 2026, 6(3), 33; https://doi.org/10.3390/pollutants6030033 - 23 Jun 2026
Viewed by 520
Abstract
Microplastics are ubiquitous environmental particles with complex physical and chemical properties that enable them to interact with other contaminants. Recent evidence suggests that microplastics act as carriers for various chemical pollutants, altering their transport, deposition, and deposition dose. This conceptual review synthesizes current [...] Read more.
Microplastics are ubiquitous environmental particles with complex physical and chemical properties that enable them to interact with other contaminants. Recent evidence suggests that microplastics act as carriers for various chemical pollutants, altering their transport, deposition, and deposition dose. This conceptual review synthesizes current knowledge of radon progeny behavior and microplastic properties and suggests potential mechanisms for their interaction, although direct experimental validation of radon progeny specifically is currently lacking. It discusses attachment kinetics, transport pathways in air and water, and microplastic-mediated shifts in human lung deposition patterns and ecological exposure. Theoretical dosimetry reasoning suggests that, if attachment occurs, small respirable microplastics (1–10 μm) could increase inhalation doses by prolonging the airborne residence time of progeny indoors, whereas macro- and coarse microplastics would primarily affect localized environmental hotspots. These possibilities remain to be tested experimentally. Integrated experimental and modelling approaches, including radon chamber studies, aerosol and aquatic transport experiments, respiratory tract modelling, and ecological bioassays, are proposed to quantify these processes and inform risk assessment. Knowledge gaps remain in attachment efficiency, retention, co-contaminant interactions, and long-term exposure scenarios. Addressing these gaps is critical for refining human and ecological risk assessments and guiding regulatory frameworks in radon-microplastic-impacted environments. Full article
(This article belongs to the Section Emerging Pollutants)
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39 pages, 1603 KB  
Review
Radon-Induced Radiation Biomarkers: A Scoping Review from Exposure Dosimetry to Early Biological Effects on the Lung
by Phoka C. Rathebe and Mota Kholopo
Int. J. Mol. Sci. 2026, 27(10), 4391; https://doi.org/10.3390/ijms27104391 - 14 May 2026
Viewed by 1136
Abstract
Radon-222, a naturally occurring radioactive gas, is the second leading cause of lung cancer globally, after tobacco use. When inhaled, its decay products, especially polonium-218 and polonium-214, emit high-energy alpha particles that induce dense DNA damage in the bronchial epithelium. Because ambient radon [...] Read more.
Radon-222, a naturally occurring radioactive gas, is the second leading cause of lung cancer globally, after tobacco use. When inhaled, its decay products, especially polonium-218 and polonium-214, emit high-energy alpha particles that induce dense DNA damage in the bronchial epithelium. Because ambient radon measurements often vary significantly over time and across locations, they provide limited insight into individual exposure levels. This suggests the urgent need for biological markers that can accurately indicate internal dose and early signs of lung cancer development. This review offers an extensive overview of biomarkers associated with radon exposure, from internal dosimetry to early biological responses. It covers internal dose markers (e.g., radon progeny in air and 210Po/210Pb in bones and teeth), molecular and cytogenetic indicators of effective dose (such as chromosomal aberrations, γ-H2AX foci, and DNA adducts), and early effect markers (including somatic mutations, epigenetic changes, miRNA profiles, and autoantibody signatures). The review highlights translocations detected via FISH, discussing those that are stable over time versus those that are transient. It also evaluates the reliability and practicality of these biomarkers in occupational and residential settings, noting how smoking complicates causal inference due to overlapping mutation pathways. Finally, it suggests that integrating multi-omics technologies could improve the precision of biomarker panels. Full article
(This article belongs to the Special Issue Biological Effects of Radiation on Human Cells and Tissues)
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21 pages, 638 KB  
Systematic Review
Health Implications of Radon Exposure Among Children: A Systematic Review
by Rasaq Yusuf and Phoka C. Rathebe
Children 2026, 13(2), 208; https://doi.org/10.3390/children13020208 - 31 Jan 2026
Cited by 1 | Viewed by 1953
Abstract
Background: Radon exposure has been recognised as a risk factor for developing lung cancer and other health issues. The mutagenic changes associated with long-term radon exposure take 10–30 years to manifest, which may lead to a lower observed incidence of lung cancer [...] Read more.
Background: Radon exposure has been recognised as a risk factor for developing lung cancer and other health issues. The mutagenic changes associated with long-term radon exposure take 10–30 years to manifest, which may lead to a lower observed incidence of lung cancer in children. Children are more vulnerable to radon exposure and its effects due to their smaller lung capacity and faster breathing rates, resulting in greater radon inhalation. Objective: The aim of the study is to present current evidence on the association between radon exposure and health effects among children. Methodology: We conducted a systematic review of the available literature on radon exposure and its health impacts, focusing on children. A preliminary literature scoping was conducted in CINAHL, PubMed, Google Scholar, and ScienceDirect. Some of the search terms included: “children” OR “health” OR “implications” OR “radon” OR “exposure”. Subsequently, a comprehensive search was conducted, covering quantitative studies in EBSCOhost across all selected databases. The review adhered to the 27-item PRISMA (Preferred Reporting Items for Systematic Reviews and Meta-Analyses) checklist. The quality of the evidence gathered was assessed using the Grading of Recommendations Assessment, Development and Evaluation (GRADE) tool. The study was registered with PROSPERO under the ID: CRD420251269394. The review analysed 26 studies, all published between 1994 and 2025. Results: The incidence of lung cancer was projected to increase with childhood radon exposure, with statistical significance (OR per radon 100 Bq/m3 = 1.16; 1.05–1.31). Certain biological markers were associated with childhood long-term radon exposure: IL-5 (13.4%; 95% CI: 0.4–2.8; p = 0.044). Conclusions: Childhood radon exposure, although rarely enough to cause overt malignancy, contributes cumulatively to lifetime lung cancer risk and causes detectable biological markers. Full article
(This article belongs to the Section Pediatric Pulmonary and Sleep Medicine)
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19 pages, 2477 KB  
Article
Development of an Advanced Life Cycle Impact Assessment Method to Evaluate Radioactivity in Construction Materials
by Cansu Özcan Kilcan, Uku Andreas Reigo and Alan H. Tkaczyk
Recycling 2025, 10(5), 195; https://doi.org/10.3390/recycling10050195 - 21 Oct 2025
Cited by 1 | Viewed by 1608
Abstract
While reducing industrial environmental impacts, it is essential to verify that the perceived improvements do not cause unexpected side effects. In the construction materials sector, certain circular economy practices may potentially increase the exposure from natural radioactivity due to the elevated radionuclide content [...] Read more.
While reducing industrial environmental impacts, it is essential to verify that the perceived improvements do not cause unexpected side effects. In the construction materials sector, certain circular economy practices may potentially increase the exposure from natural radioactivity due to the elevated radionuclide content in processed naturally occurring radioactive material (NORM). This study presents the development of a life cycle impact assessment (LCIA) methodology accounting for NORM impacts in construction material life cycles from cradle to use. The methodology builds upon the LCA-NORM life cycle assessment framework previously established by the research group. The novel contributions include enhancements in (1) the dose units, (2) the use-stage exposure scenario, (3) the inclusion of radionuclide inhalation as an occupational exposure pathway and (4) the revisions of key parameters, including the dose conversion coefficients (DCCs). The updated characterisation factors yielded more conservative values at the use stage (e.g., 7 times higher exposure under pessimistic conditions due to radon inhalation) compared to the previous LCA-NORM outputs. An important advancement is the implementation of the new methodology in a novel custom-developed Python package (i.e., NORMIA) to integrate the custom elementary flows into LCA calculations of the Python library Brightway v.2.5. NORMIA generates characterisation factors that quantify the equivalent stochastic risk for human health and non-human biota per unit radionuclide emission and activity, based on user-defined inputs such as construction material type and density. With this study, a more holistic and accurate assessment of the environmental sustainability of construction materials is targeted. Full article
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20 pages, 1544 KB  
Article
Radon/Thoron and Progeny Concentrations in Dwellings: Influencing Factors and Lung Cancer Risk in the Rutile Bearing Area of Akonolinga, Cameroon
by Kitcha Sime Fayette, Gondji Dieu Souffit, Oumar Bobbo Modibo, Ndjana Nkoulou II Joseph Emmanuel, Chutima Kranrod, Masahiro Hosoda, Saïdou and Shinji Tokonami
Atmosphere 2025, 16(7), 767; https://doi.org/10.3390/atmos16070767 - 22 Jun 2025
Cited by 3 | Viewed by 2022
Abstract
This paper reports the levels of radon (Rn), thoron (Tn), and their progeny (TnP) concentrations in dwellings; studies factors influencing these concentrations; and assesses the associated lung cancer risk in Akonolinga’s area in Cameroon, where rutile deposits have been identified but are not [...] Read more.
This paper reports the levels of radon (Rn), thoron (Tn), and their progeny (TnP) concentrations in dwellings; studies factors influencing these concentrations; and assesses the associated lung cancer risk in Akonolinga’s area in Cameroon, where rutile deposits have been identified but are not yet industrially exploited. Indoor Rn and Tn were determined using CR39-based detectors. Additionally, Rn in soil gas, 226Ra, and 232Th concentrations in soil were measured using Markus 10, high purity germanium detector (HPGe), respectively. On average, indoor Rn, Tn concentration, and the equilibrium equivalent Thoron concentration (EETC) or TnP were 39.5, 68.1, and 5.0 Bq m−3, respectively. Average concentrations of Rn in soil gas, 226Ra, and 232Th in soil were 24.3 kBq m−3, 17 Bq kg−1, and 27 Bq kg−1, respectively. Correlation analysis indicates that indoor radon and thoron levels were tightly linked with factors such as their precursor concentrations in soil, the building materials, dwelling architecture, and inhabitant living habits. Furthermore, it was observed that Rn and TnP were the major contributors to the inhalation effective dose, accounting for 39.6% and 56.7% of the total, respectively. The estimated excess lifetime cancer risk (ELCR) from the exposition to Rn and TnP was found to be 2.93 × 10−3 and 4.36 × 10−3, respectively, exceeding the global average, raising health concerns. Full article
(This article belongs to the Special Issue Environmental Radon Measurement and Radiation Exposure Assessment)
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20 pages, 279 KB  
Review
Radon Exposure and Cancer Risk: Assessing Genetic and Protein Markers in Affected Populations
by Yerlan Kashkinbayev, Baglan Kazhiyakhmetova, Nursulu Altaeva, Meirat Bakhtin, Pavel Tarlykov, Elena Saifulina, Moldir Aumalikova, Danara Ibrayeva and Aidos Bolatov
Biology 2025, 14(5), 506; https://doi.org/10.3390/biology14050506 - 6 May 2025
Cited by 17 | Viewed by 5363
Abstract
Radon is an inert gas produced by the radioactive decay of uranium-238, commonly found in the environment. Radon and its decay products are the main sources of human exposure to radiation from natural sources. When inhaled, radon’s alpha particles impact lung tissue, potentially [...] Read more.
Radon is an inert gas produced by the radioactive decay of uranium-238, commonly found in the environment. Radon and its decay products are the main sources of human exposure to radiation from natural sources. When inhaled, radon’s alpha particles impact lung tissue, potentially causing lung cancer by damaging DNA and altering oxidative processes. This review article addresses the need for a deeper understanding of the genetic and molecular changes associated with radon-induced lung cancer, aiming to clarify key genetic mutations and protein markers linked to carcinogenesis. Particular attention in recent studies has been given to mutations in tumor suppressor genes (RASSF1, TP53), oncogenes (KRAS, EGFR), and changes in the expression levels of protein biomarkers associated with inflammation, stress, and apoptosis. Identifying these markers is critical for developing effective screening methods for radon-induced lung cancer, enabling timely identification of high-risk patients and supporting effective preventive strategies. Summarizing current genetic and protein biomarkers, this review highlights the importance of a comprehensive approach to studying radon-induced carcinogenesis. Understanding these molecular mechanisms could ultimately improve early diagnostic methods and enhance therapy for cancers associated with radon exposure. Full article
13 pages, 2333 KB  
Article
Analysis of Long-Term Monitoring of Radon Levels in a Low-Ventilated, Semi-Underground Laboratory—Dose Estimation and Exploration of Potential Earthquake Precursors
by Ljiljana Gulan
Atmosphere 2024, 15(12), 1534; https://doi.org/10.3390/atmos15121534 - 21 Dec 2024
Cited by 5 | Viewed by 1875
Abstract
This study involves continuous radon monitoring during the academic year 2023/2024. An Airthings Corentium Home radon detector placed in the basement laboratory of a faculty building in Kosovska Mitrovica (N 42.897°, E 20.867°) was used for continuous measurements. The average radon concentration was [...] Read more.
This study involves continuous radon monitoring during the academic year 2023/2024. An Airthings Corentium Home radon detector placed in the basement laboratory of a faculty building in Kosovska Mitrovica (N 42.897°, E 20.867°) was used for continuous measurements. The average radon concentration was 303 Bq/m3, and a seasonal pattern during the measuring period was observed. For the first time, the results were grouped by week, excluding non-working days, to present a real case scenario with the aim of assessing the radon exposure of students, teachers, and employed persons. The inhalation dose from radon (1.54 mSv) was very high considering that exposure occurred in both semesters. Another aspect of continuous radon monitoring was to explore the relationship between indoor radon measurements and the occurrences of earthquakes in the Balkan region. Daily variations in radon (peaks and differences) were analyzed at the monitoring site by using both empirical laws and taking into account the earthquake data set provided by the Seismological Survey of Serbia. The analysis revealed that the events chosen to confirm a clear association between earthquake occurrence and enhanced radon activities in the air(as a precursor of seismic activities) did not meet the required criteria but most likely reflected external meteorological conditions. Full article
(This article belongs to the Special Issue Environmental Radon Measurement and Radiation Exposure Assessment)
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15 pages, 5159 KB  
Article
A Study of the Relationship Among Radon, Thoron and Radioactive Aerosol Particle Distribution in PM2.5 Risk Areas in Kanchanaburi Province, Thailand
by Chutima Kranrod, Chanis Rattanapongs, Phachirarat Sola, Arisa Manowan, Ancharee Onjan, Kitkawin Aramrun and Shinji Tokonami
Atmosphere 2024, 15(12), 1439; https://doi.org/10.3390/atmos15121439 - 29 Nov 2024
Cited by 1 | Viewed by 2001
Abstract
Tha Maka is the district with the highest incidence of cancer patients in Kanchanaburi province and is classified as a high-risk area for PM2.5 exposure due to the presence of many sugar factories. Most of the population is in agricultural occupation, leading [...] Read more.
Tha Maka is the district with the highest incidence of cancer patients in Kanchanaburi province and is classified as a high-risk area for PM2.5 exposure due to the presence of many sugar factories. Most of the population is in agricultural occupation, leading to the annual burning of sugarcane and rice stubble to start new plantings, which is another cause of air pollution. This study aimed to investigate the correlation among radon, thoron, and airborne particles potentially implicated in lung cancer etiology, which focused on monitoring the concentrations of radon, thoron, and their progeny, as well as analyzing the distribution of particle sizes categorized into 10, 2.5, 1, 0.5, and less than 0.5 μm to assess possible health impacts or lung cancer risk factors. The findings indicated that indoor radon concentrations ranged from 13 to 81 Bq m−3, with a mean of 26.1 ± 11.9 Bq m−3, while indoor thoron concentrations varied from 2 to 52 Bq m−3, averaging 15.7 ± 10.8 Bq m−3. These levels are below the radiation dose limit recommended by the World Health Organization and the International Commission on Radiological Protection (ICRP). The total annual inhalation dose ranged from 0.44 to 2.02 mSv y−1, which is within the usual limits. The average annual effective doses from attached progeny were 0.83 mSv y−1 for radon and 0.57 mSv y−1 for thoron, both of which are regarded to be low. Consequently, based on all the findings, it may be assumed that radon, thoron, and their progeny may not be the primary contributors to lung cancer in the region. Nonetheless, while the mean value falls below the recommended thresholds established by the ICRP or WHO, it is indisputable that in certain regions, representing roughly 6.6% of the total area, the value surpasses the global average documented by the UNSCEAR. Furthermore, the aerosol particle size predominantly observed was less than 1 μm for radon and 0.5 μm for thoron, which is a significant factor that may influence the incidence of respiratory disorders. Nevertheless, as this study was conducted during the non-burning period, future research must be conducted during the burning season, using supplementary factors to acquire more thorough data. Full article
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11 pages, 3736 KB  
Article
Determination of the Radon Progeny Activity Size Distribution in Laboratory Conditions
by Eliska Fialova and Petr P. S. Otahal
Atmosphere 2024, 15(11), 1262; https://doi.org/10.3390/atmos15111262 - 22 Oct 2024
Cited by 7 | Viewed by 2510
Abstract
Knowledge of the active size distribution of radon daughters is one of the main parameters for determining the effective dose from inhalation of short-term radon decay products. However, this parameter is crucial for accurately determining an effective dose; there are currently very limited [...] Read more.
Knowledge of the active size distribution of radon daughters is one of the main parameters for determining the effective dose from inhalation of short-term radon decay products. However, this parameter is crucial for accurately determining an effective dose; there are currently very limited possibilities for determining it. This paper describes the laboratory validation of a method for determining the activity size distribution of radon decay products using the Dekati ELPI+ cascade impactor and the Graded Screen Array Diffusion Battery (GSA DB). Using nuclear track detectors placed on individual impaction plates of the cascade impactor, the equivalent equilibrium activity concentration of individual size classes can be determined in the range from 17 nm to 10 μm. A diffusion battery was used to detect smaller particles in the unattached fraction area. The presented method can further refine the knowledge of the activity size distribution of radon decay products in different types of workplace atmospheres. Workplaces with higher radon concentrations differ significantly in the size distribution of aerosol particles, radon activity concentration, and equilibrium equivalent activity concentration. Full article
(This article belongs to the Special Issue Environmental Radon Measurement and Radiation Exposure Assessment)
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15 pages, 6408 KB  
Article
Assessment of Radon Concentration and Health Hazards in Natural Spring Water of a Sub-Himalayan District
by Ayesha Sajid, Mavia Anjum, Hannan Younis, Moustafa Salouci, Khurram Mehboob and Abd Haj Ismail
Atmosphere 2024, 15(8), 940; https://doi.org/10.3390/atmos15080940 - 6 Aug 2024
Cited by 12 | Viewed by 4449
Abstract
The objective of this study was to evaluate the extent of radon contamination in twenty-six drinking water samples from natural springs were collected from Dhirkot Azad Kashmir, along with four bottled mineral water samples. Radon gas escapes from the earth’s crust due to [...] Read more.
The objective of this study was to evaluate the extent of radon contamination in twenty-six drinking water samples from natural springs were collected from Dhirkot Azad Kashmir, along with four bottled mineral water samples. Radon gas escapes from the earth’s crust due to uranium ores and diffuses into the atmosphere. This study assessed the levels of radon concentration, the yearly effective radiation dose, and carcinogenic risk from radon exposure in drinking water samples. The radon concentration varied from 0.28 to 30.25 Bq/L. The mean radon concentration of all samples was found to be 7.86 ± 2.3 Bq/L. The radon concentrations in bottled drinking water were found to be lower than those in natural springs. The statistical and GIS analyses included the use of interpolation and Pearson’s correlation matrix. Seven samples had radon concentration that surpassed the standard limit established by the US-EPA, which is 11 Bq/L. The average annual effective dose from inhalation and ingestion was found to be lower than the value (0.1 mSv/y) provided by the WHO, but for some natural spring water samples, it exceeded the risk limit. The cancer risk revealed that 40% of the samples had an elevated lifetime cancer risk from radon exposure. Overall, the majority of the results obtained aligned with the worldwide guidelines established by the US-EPA. However, there were a few instances where the limits were exceeded, and constant monitoring is recommended. This study establishes a baseline for radon concentration in the area and provides a basis for future studies. Full article
(This article belongs to the Special Issue New Insights in the Modeling of Earth and Planetary Atmospheres)
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8 pages, 488 KB  
Article
Italian National Radon Action Plan: New Challenges for Risk Assessment
by Giuseppe La Verde, Giuseppe Della Peruta, Chiara Imparato, Fabrizio Ambrosino, Rocco Mottareale, Gaetano Gagliardo and Mariagabriella Pugliese
Atmosphere 2024, 15(7), 846; https://doi.org/10.3390/atmos15070846 - 18 Jul 2024
Cited by 4 | Viewed by 3949
Abstract
Radon gas is one of the chemical pollutants with one of the most significant physical effects due to its impact on human health: it is a radioactive noble gas which, if inhaled, can stochastically induce lung cancer. For this reason, it is classified [...] Read more.
Radon gas is one of the chemical pollutants with one of the most significant physical effects due to its impact on human health: it is a radioactive noble gas which, if inhaled, can stochastically induce lung cancer. For this reason, it is classified as a category A substance and is the second cause of cancer after tobacco smoking. The monitoring and management of indoor radon is based on international recommendations but also national regulations, which, in recent years, have been updated by lowering the reference levels. In this work, some radon activity concentration data were evaluated by comparing the criteria of old and new legislation to highlight how the radiation protection approach has completely changed. Specifically, this study focuses on measurements in Campania, which, due to its originally volcanic geological structure, requires crucial attention in the context of radon risk assessment, given the considerable number of dwellings built in tuff. This initial data processing enabled the identification of potential high-priority radon risk areas, serving as an important reference point for the extension of the monitoring activities in Campania. Full article
(This article belongs to the Special Issue Air Pollution in Italy: Effects, Sources and Control)
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10 pages, 2739 KB  
Article
Radon Concentration in Air and Evaluation of the Radiation Dose in Villages near Shizhuyuan, Southern Hunan, China
by Wanyu Tan and Yixun Nie
Atmosphere 2024, 15(7), 786; https://doi.org/10.3390/atmos15070786 - 29 Jun 2024
Cited by 3 | Viewed by 2358
Abstract
Radon is one of the important natural sources of radiation and pollutants. When radon and its progeny are inhaled by the human body, they can cause radiation damage to the respiratory system and can lead to lung cancer. Indoor and outdoor radon concentrations [...] Read more.
Radon is one of the important natural sources of radiation and pollutants. When radon and its progeny are inhaled by the human body, they can cause radiation damage to the respiratory system and can lead to lung cancer. Indoor and outdoor radon concentrations were measured in five villages near Shizhuyuan W-polymetallic deposit using a RAD7 detector; moreover, the corresponding radiation dose and lifetime risk probability were evaluated. The results show that the average value of indoor radon concentration was 216.6 ± 121.1 Bq m−3, which is above the worldwide average indoor radon level of 40 Bq m−3, and the average outdoor value was 34.6 ± 13.4 Bq m−3, which is higher than the worldwide outdoor average of 10 Bq m−3. A total of 42% of the dwellings investigated in our study had a higher radon level than the Chinese permissible indoor radon level of 200 Bq m−3. The total annual effective dose ranged from 5.21 mSv y−1 to 49.38 mSv y−1, with an average value of 14.63 mSv y−1, which is higher than the ICRP recommended value of 3–10 mSv y−1. This average total dose value corresponds to an average lifetime risk probability of 5.8% for residents in the whole study area. Full article
(This article belongs to the Special Issue Environmental Radon Measurement and Radiation Exposure Assessment)
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22 pages, 2027 KB  
Article
Assessment of Radiological Risks due to Indoor Radon, Thoron and Progeny, and Soil Gas Radon in Thorium-Bearing Areas of the Centre and South Regions of Cameroon
by Atangana Bingana Martin Serge, Takoukam Soh Serge Didier, Bineng Guillaume Samuel, Chutima Kranrod, Yasutaka Omori, Masahiro Hosoda, Saïdou and Shinji Tokonami
Atmosphere 2023, 14(12), 1708; https://doi.org/10.3390/atmos14121708 - 21 Nov 2023
Cited by 18 | Viewed by 3362
Abstract
Indoor radon, thoron and thoron progeny concentrations, along with the equilibrium factor for thoron progeny and soil gas radon concentrations, have been measured to assess radiological risks in the centre and south regions of Cameroon. Indoor radon and thoron concentrations were estimated using [...] Read more.
Indoor radon, thoron and thoron progeny concentrations, along with the equilibrium factor for thoron progeny and soil gas radon concentrations, have been measured to assess radiological risks in the centre and south regions of Cameroon. Indoor radon and thoron concentrations were estimated using radon–thoron discriminative detectors (RADUET), while thoron progeny monitors measured the equilibrium equivalent thoron concentration (EETC). Radon concentrations in the soil were determined using a MARKUS 10 detector. It was found that radon, thoron and thoron progeny concentrations range between 19 and 62 Bq m−3, 10 and 394 Bq m−3 and 0.05 and 21.8 Bq m−3, with geometric means of 32 Bq m−3, 98 Bq m−3 and 4.9 Bq m−3, respectively. The thoron equilibrium factor ranges between 0.007 and 0.24, with an arithmetic mean of 0.06 ± 0.03; this is higher than the world average value of 0.02 provided by the United Nations Scientific Commission on the Effects of Atomic Radiation(UNSCEAR, New York, USA). The level of the soil radon concentration ranges from 4.8 to 57.3 kBq m−3, with a geometric mean of 12.1 kBq m−3 at a depth of 0.7 m. Of the sampling points, 66% fall within normal radon risk areas, and 3% of the sampling areas are high radon risk areas exceeding 50 kBq m−3. The annual effective dose was found to be 0.03 ± 0.01 mSv for radon, 0.08 ± 0.05 mSv for thoron, 0.63 ± 0.12 mSv for radon progeny and 1.40 ± 0.84 mSv for thoron progeny. The total dose is estimated to be 2.14 mSv y−1. The mean estimated indoor excess lifetime cancer risk values due to radon, thoron, radon progeny and thoron progeny are 0.12 × 10−3, 0.31 × 10−3, 2.51 × 10−3 and 5.58 × 10−3, respectively. Thoron progeny contributed 60% to the effective dose. Thus, thoron progeny cannot be neglected in dose assessments, in order to avoid biased results in radio-epidemiological studies. Full article
(This article belongs to the Special Issue Atmospheric Radon Concentration Monitoring and Measurements)
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20 pages, 13939 KB  
Article
Evaluation of the Radon Levels in the Groundwater Wells of Qatar: Radiological Risk Assessment
by Yehia Manawi, Ayesha Ahmad, Mosab Subeh, Mohammad Hushari, Sayed Bukhari and Huda Al-Sulaiti
Water 2023, 15(22), 4026; https://doi.org/10.3390/w15224026 - 20 Nov 2023
Cited by 13 | Viewed by 4453 | Correction
Abstract
The objective of this work is to give a holistic overview of the groundwater quality in Qatar in terms of its radon levels and provide a radiological risk assessment of elevated radon levels on human health. This study covered the analysis of groundwater [...] Read more.
The objective of this work is to give a holistic overview of the groundwater quality in Qatar in terms of its radon levels and provide a radiological risk assessment of elevated radon levels on human health. This study covered the analysis of groundwater collected from various locations throughout Qatar and maps using ArcGIS followed by a radiological risk assessment of radon in Qatar. There is no extensive study reported to investigate radon activity levels in groundwater across Qatar and their health effects. The radon level measurements of the Qatari groundwater ranged between 2.7 ± 0.2 and 60.7 ± 13.4 Bq/L with a mean value of 20.6 Bq/L, which is greater than the US EPA’s maximum contamination level (11 Bq/L). About 65% of the studied samples exceeded the US EPA’s MCL guidelines. The mean total annual effective dose due to radon inhalation and ingestion was 0.056 mSv/y, which is below the WHO reference level of 0.1 mSv/y. The radon radiological risk study through inhalation and ingestion clearly revealed that the contribution of the inhalation dose was higher than the ingestion dose. Full article
(This article belongs to the Section Water Quality and Contamination)
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12 pages, 740 KB  
Article
Preliminary Population Exposure to Indoor Radon and Thoron in Dhaka City, Bangladesh
by Md. Mahamudul Hasan, Miroslaw Janik, Shikha Pervin and Takeshi Iimoto
Atmosphere 2023, 14(7), 1067; https://doi.org/10.3390/atmos14071067 - 24 Jun 2023
Cited by 8 | Viewed by 4057
Abstract
Radon, an element of natural radiation, is considered one of the leading causes of lung cancer worldwide. In Bangladesh, radon has been clarified as a foremost source of radiation exposure. Potential natural-radiation-induced elevated cancer risks were estimated in Bangladesh previously for the population. [...] Read more.
Radon, an element of natural radiation, is considered one of the leading causes of lung cancer worldwide. In Bangladesh, radon has been clarified as a foremost source of radiation exposure. Potential natural-radiation-induced elevated cancer risks were estimated in Bangladesh previously for the population. In this survey, as a very preliminary study in the country, comparative indoor radon (222Rn, Rn) and thoron (220Rn, Tn) concentration/population exposure was determined for the multistoried dwellings of south-western areas of Dhaka city. RADUET was used to assess annual Rn and Tn concentrations in determining the primary inhalation dose for the population. The annual effective dose of Rn and Tn was evaluated in this study for dwellings at 0.3 mSvy−1, constituting a Tn dose contribution of an average of 40% with a dwelling-based wide range of 10–96%. Thus, Tn should not be neglected for Bangladesh while estimating radiological inhalation dose from the indoor environment. Again, the equilibrium factors, F of Rn and Tn, were determined by short-term measurement at averages of 0.6 and 0.02, respectively. Furthermore, using questionnaire estimation by principal component analysis, PCA following the dwelling characteristics, human lifestyles, and estimated long-term indoor Rn and Tn concentrations, this paper discussed indoor atmospheric/Rn factors for the investigated multistoried dwellings in Dhaka city. Full article
(This article belongs to the Special Issue Atmospheric Radon Concentration Monitoring and Measurements)
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