A plastic scintillator has been developed which shows a decay time dependent upon energy loss per unit distance, and hence is suitable for use with pulse shape discrimination methods. This scintillator was employed in conjunction with an improved discrimination system and the data were analyzed on a two-dimensional analyzer which provided a matrix of 72…
IRE Transactions on Nuclear Science Template
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About the IRE Transactions on Nuclear Science format
IRE Transactions on Nuclear Science is a peer-reviewed journal published by IEEE, covering Radiation Detection and Scintillator Technologies, Nuclear Physics and Applications, Particle Detector Development and Performance.
| Publisher | IEEE |
|---|---|
| Reference style | Numbered (IEEE) Numbered — [1], [2] in the text [1] A. Smith, B. Jones, and C. Lee, "A representative article title," IRE Transactions on Nuclear Science, vol. 12, no. 3, pp. 45–58, 2023.
Formats any DOI in IRE Transactions on Nuclear Science style. No sign-up. |
| Publishes research in | Radiation Detection and Scintillator Technologies Nuclear Physics and Applications Particle Detector Development and Performance Nuclear reactor physics and engineering Nuclear and radioactivity studies |
| ISSN | 0096-2015 |
| h-index | 29 |
| i10-index | 87 |
| Total citations | 2,981 |
| Top institutions publishing here | Oak Ridge National Laboratory |
| Journal website | books.google.com |
| You get | A submission-ready PDF and the editable LaTeX source — ready to submit. |
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Most-cited papers in IRE Transactions on Nuclear Science
Studies of the differences in the decay time of organic phosphors have shown that, while most of the light is emitted with a short-period fluorescence decay, differences in specific ionization affect the long-term components. It is consequently possible to distinguish between gamma ray and neutron excitation of many phosphors (including scintillating liquids) by using multiplier…
Work on pure NaI reported at the Fifth Scintillation Counter Symposium (1956) has been extended using crystals of higher purity at temperatures down to 4°K. Decay of the light pulse from unactivated NaI is not a simple exponential but exhibits a rising component superimposed on an exponential decay. In other measurements, the absolute conversion efficiency…
Measurements of spectrometer resolution using an electron gun and phosphor type of light source yield values considerably better than those obtained from scintillations in a phosphor. Line widths of about 3.4 per cent have been obtained at a pulse height equivalent to 661 kev in NaI. An investigation is being made to determine the causes…
The spectra of the luminescence from unactivated Nal and thallium activated NaI have been measured in the temperature range -190°C. to +20°C. using alpha particles, gamma rays, and ultraviolet light as sources of excitation. The characteristic emission from NaI ("pure") is in a band centered at approximately 300 mμ. The intensity is weak at room…