生物剂量学
电子顺磁共振
搪瓷漆
牙釉质
材料科学
剂量计
辐射
人类牙齿
生物医学工程
辐照
核医学
剂量学
放射化学
辐射灵敏度
光谱学
放射治疗
连续波
核磁共振
辐射剂量
吸收剂量
牙科
光学
医学物理学
磁共振成像
牙釉质
校准
辐射暴露
作者
Lekhnath Ghimire,Edward Waller
出处
期刊:Health Physics
[Lippincott Williams & Wilkins]
日期:2025-11-24
卷期号:130 (1): 36-47
被引量:1
标识
DOI:10.1097/hp.0000000000002041
摘要
This study focuses on recent advancements in biodosimetry using continuous wave (CW) Q-band electron paramagnetic resonance (EPR) spectroscopy and mini-biopsy samples from tooth enamel. When radiation is absorbed, the carbonate impurities in enamel (i.e., hydroxyapatite) are changed into •CO2- (carbon dioxide radical anions), which become trapped within the crystal lattice and remain stable for durations far exceeding human lifespans. This stability makes tooth enamel an ideal material for assessing radiation doses in both accident and retrospective scenarios. In contrast to traditional, more invasive CW X-band EPR (9.8 GHz) methods, the CW Q-band EPR technique allows for the non-invasive (or minimally invasive) collection of smaller enamel fragments. This enables faster, more comfortable sampling. Operating at approximately 34 GHz, CW Q-band EPR offers enhanced sensitivity and a significantly improved signal to noise ratio (S/N) compared to CW X-band EPR. This increased sensitivity is crucial for detecting lower radiation doses in smaller samples, making it particularly useful for accurately identifying high-risk individuals in radiation triage situations. For this study, mini biopsies weighing around 2 mg were extracted from teeth and analyzed at room temperature using CW Q-band EPR. Calibration curves were established using reference doses, allowing the precise calculation of doses from signal intensity. Radiation doses higher than 100 mSv were estimated with high precision and accuracy. The combination of CW Q-band EPR spectroscopy and mini-biopsy sampling of tooth enamel provides a rapid, reliable method for dose assessment in radiation triage scenarios. This advancement is essential for developing efficient biodosimetry techniques, enabling the timely identification and management of individuals exposed to ionizing radiation during radiation incidents. Additionally, this method proves invaluable for retrospective dose reconstruction in cases of chronic exposure applicable to individuals, groups, or entire populations.
科研通智能强力驱动
Strongly Powered by AbleSci AI