Abstract
Detecting nuclear radiation presents a distinctive challenge, particularly with neutrons, which are neutral particles. The method of direct detection involves the utilization of a converter material, acting as an intermediary. Boron plays a pivotal role in this process, reacting with thermal neutrons to generate alpha particles and lithium, with a notable energy release of 2.314 MeV during the 10B (n,α) 7Li reaction. This facilitates effective identification and measurement of neutrons in radiation detection systems. The paths of the particles α (for E = 1.474 MeV) and Li (for ELi = 0.842 MeV). The active medium of the nuclear detector, typically a gas, undergoes ionization by these highly charged particles, or they form ion pairs that are subsequently collected by electrodes to produce the signal at the detector’s output. Various deposit methods can be used for this purpose, electrophoresis offers a distinct advantage in terms of both simplicity and precision. This study details the utilization of the electrophoresis technique for the deposition of boron on the tube walls of prototype detectors developed within our laboratory.
Acknowledgments
We would like to thank all the engineers and technicians of the Detection and Instrumentation Department, in particular the Director of CRNB and the staff of the DEDIN Division, who greatly facilitated the experimental campaign.
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Research ethics: Not applicable.
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Author contributions: MF, MM, MYD and KN: contributed to designing, interpretation of data and drafting the manuscript. MF and KN: experiments and revising the manuscript. MM, MYD: data collection, MF and MM: statistical analysis. All authors have read and agreed to the published version of the manuscript.
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Competing interests: All authors declare no conflict of interest.
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Research funding: None declared.
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Data availability: Not applicable.
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© 2024 Walter de Gruyter GmbH, Berlin/Boston
Artikel in diesem Heft
- Frontmatter
- Original Papers
- Reverse phase liquid chromatographic method for the measurement of uranium in process stream solutions from uranium extraction facility
- An LSC approach for tritium determination in gaseous mixtures optimized with respect to handling, reaction parameters and miniaturization towards microfluidic analysis
- Application of thin boron deposit by electrophoresis as neutron detectors
- Development of [64Cu]Cu-BPAMD for PET imaging of bone metastases
- Investigation of the dose-response linearity of guar gum for gamma-ray dosimetry at radiation processing levels using Raman spectroscopy
- A novel method for evaluating the depletion of veterinary pharmaceuticals using radioisotopes
- 210Pb dating and neutron activation analysis of the Sundarban mangrove sediments: sedimentation rate and metal contamination history
- Obituary
- In Memoriam: Jens Volker Kratz (1944–2024)
Artikel in diesem Heft
- Frontmatter
- Original Papers
- Reverse phase liquid chromatographic method for the measurement of uranium in process stream solutions from uranium extraction facility
- An LSC approach for tritium determination in gaseous mixtures optimized with respect to handling, reaction parameters and miniaturization towards microfluidic analysis
- Application of thin boron deposit by electrophoresis as neutron detectors
- Development of [64Cu]Cu-BPAMD for PET imaging of bone metastases
- Investigation of the dose-response linearity of guar gum for gamma-ray dosimetry at radiation processing levels using Raman spectroscopy
- A novel method for evaluating the depletion of veterinary pharmaceuticals using radioisotopes
- 210Pb dating and neutron activation analysis of the Sundarban mangrove sediments: sedimentation rate and metal contamination history
- Obituary
- In Memoriam: Jens Volker Kratz (1944–2024)