The potential of protective glass from smartphones as an emergency personal dosimeter for members of the general public in radiological accidents

Authors

  • SERGEY SHOLOM Brookhaven National Lab
  • Steve McKeever

DOI:

https://doi.org/10.15392/2319-0612.2022.2062

Keywords:

Non-destructive OSL dosimetry with phones, Phone protective glass, Tunneling mechanism in OSL

Abstract

The potential of the back protective glass from modern smartphones as a possible material for an emergency triage, OSL dosimeter was evaluated.  Strong OSL signals were observed in samples of glass from phones of different models and brands after irradiation. Some important parameters of these signals were analyzed, namely the OSL decay curve shape, the dependence on dose, and the stability (fading) with time after exposure. Analysis of the shape suggested that the main mechanism of the OSL production is optically assisted tunneling. The dose-response characteristics demonstrated linearity in the tested dose range (0-2.7 Gy) provided that fading was accounted for during calibration irradiation.   The fading after irradiation was described by a universal, two-component function with a primary component due to tunneling and a secondary, thermal component. Dose reconstruction tests were carried out for in-service phones exposed to known doses and then kept in normal usage (phone calls, texts, web surfing, etc.) as well as for out-of-service phones irradiated to blind (unknown) doses. Dose reconstruction was conducted using a custom-made OSL reader without dismantling any part of the phone. OSL-reconstructed, fading-corrected doses were within 25% (worse case) of the corresponding nominal values. It was concluded that the back protective glass can be used as an OSL emergency triage dosimeter (if protected from ambient light by a phone case).

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References

DEGTEVA, M.O., ANSPAUGH, L.R., AKLEYEV, A.V., JACOB, P., IVANOV, D.V., WEISER, A., VOROBIOVA, M.I., SHISHKINA, E.A., SHVED, V.A., VOZILOVA, A.V., BAYANKIN, S.N., NAPIER, B. Electron paramagnetic resonance and fluorescence in situ hybridization-based investigations of individual doses for persons living at Metlino in the upper reaches of the Techa River. Health Phys, v. 88, p. 139–153, 2005.

CHUMAK, V., SHOLOM, S., PASALSKAYA, L. Application of high precisions EPR dosimetry with teeth for reconstruction of doses to Chernobyl populations. Radiat Prot Dosim, v. 84, p. 515-520, 1999.

ISHIKAWA, T. Radiation doses and associated risk from the Fukushima nuclear accident: a review of recent publications. Asia Pacific J Public Health, v. 29(2S), p. 18S–28S, 2017.

BAILIFF, I.K., MCKEEVER, S.W.S., SHOLOM, S. Retrospective and emergency dosimetry in response to radiological incidents and nuclear mass-casualty events: a review. Radiat Meas, v. 94, p. 83–139, 2016.

ICRU - International Commission on Radiation Units and Measurements. Methods for Initial-Phase Assessment of Individual Doses Following Acute Exposure to Ionizing Radiation, ICRU Report 94, J. ICRU, 2019. 162p.

CHANDLER, J.R., SHOLOM, S., MCKEEVER, S.W.S., BAKHANOVA, E., CHUMAK, V., VELÁSQUEZ, D., HALL, H.L. Dose conversion factors for absorbed dose in a mobile phone to absorbed dose in critical organs in an anthropomorphic phantom for emergency dosimetry applications: OSL and TL experimental results, and Monte Carlo simulations. Radiat Meas, in press, doi: https://doi.org/10.1016/j.radmeas.2022.106781, 2022.

SMITH, R.W., EAKINS, J.S., HAGER, L.G., ROTHKAMM, K., TANNER, R.J. Development of a retrospective/fortuitous accident dosimetry service based on OSL of mobile phones. Radiat Protect Dosim, v. 164, p. 89–92, 2015.

SHOLOM, S., MCKEEVER, S.W.S. Developments for emergency dosimetry using components of mobile phones. Radiat Meas, v. 106, p. 416–422, 2017.

SHOLOM, S., MCKEEVER, S.W.S. OSL with chips from US credit cards. Radiat Meas, v. 141, p. 106536, 2021.

BASSINET, C., WODA, C., BORTOLIN, E., DELLA MONACA, S., FATTIBENE, P., QUATTRINI, M.S., BULANEK, B., EKENDAHL, D., BURBIDGE, C., CAUWELS, V., KOUROUKLA, E., GEBER-BERGSTRAND, T., MROZIK, A., MARCZEWSKA, B., BILSKI, P., SHOLOM, S., MCKEEVER, S.W.S., SMITH, R.W., VERONESE, I., GALLI, A., PANZERI, L., MARTINI, M. Retrospective radiation dosimetry using OSL from electronic components: results of an inter-laboratory comparison. Radiat Meas, v. 71, p. 475–479, 2014.

MCKEEVER, S.W.S., SHOLOM, S. Luminescence measurements for retrospective dosimetry. In: CHEN, R., PAGONIS, V. (Eds.) Advances in physics and applications of optically and thermally stimulated luminescence. World Scientific Publishing Europe Ltd., 2019, p. 319–362.

MCKEEVER, S.W.S., SHOLOM, S., CHANDLER, J.R. Developments in the use of thermoluminescence and optically stimulated luminescence from mobile phones in emergency dosimetry. Radiat Protect Dosim, v. 192, p. 205–235, 2020.

CHANDLER, J.R., SHOLOM, S., MCKEEVER, S.W.S., HALL, H.L. Thermoluminescence and phototransferred thermoluminescence dosimetry on mobile phone protective touchscreen glass. J Appl Phys, v. 126, p. 074901, 2019.

CHANDLER, J.R., SHOLOM, S., MCKEEVER, S.W.S., SEAGRAVES, D.T., HALL, H.L. Optically stimulated luminescence dosimetry on mobile phone back protective glass. Phys Open, v. 7, p. 100072, 2021.

SHOLOM, S., MCKEEVER, S.W.S., CHANDLER, J.R. OSL dosimetry with protective glasses of modern smartphones: a fiber-optic, non-destructive approach. Radiat Meas, v. 136, p. 106382, 2020.

SHOLOM, S., MCKEEVER, S.W.S. A non-destructive, high-sensitivity, emergency dosimetry method using OSL from protective back-glasses from smartphones. Radiat Meas, v. 147, p. 106646, 2022.

HUNTLEY, D.J. An explanation of the power-law decay of luminescence. J Phys Condens Matter, v. 18, p. 1359–1365, 2006.

JAIN, M., GURALNIK, B., ANDERSEN, M.T. Stimulated luminescence emission from localized recombination in randomly distributed defects. J Phys Condens Matter, v. 24, p. 385402, 2012.

KITIS, G., PAGONIS, V. Analytical solutions for stimulated luminescence emission from tunneling recombination in random distributions of defects. J Lumin, v. 137, p. 109–115, 2012.

KARS, R.H., POOLTON, N.R.J., JAIN, M., ANJÆRGAARD, C., DORENBOS, P., WALLINDA, J. On the trap depth of the IR-sensitive trap in Na and K-feldpsar. Radiat Meas, v. 59, p. 103–113, 2013.

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Published

2022-07-21

How to Cite

The potential of protective glass from smartphones as an emergency personal dosimeter for members of the general public in radiological accidents. Brazilian Journal of Radiation Sciences, Rio de Janeiro, Brazil, v. 10, n. 2A (Suppl.), 2022. DOI: 10.15392/2319-0612.2022.2062. Disponível em: https://www.bjrs.org.br/revista/index.php/REVISTA/article/view/2062.. Acesso em: 3 may. 2024.

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