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1

Fragopoulou, M., S. Stoulos, M. Zamani, et al. "A study of the response of depleted type p-MOSFETs to electron dose." HNPS Proceedings 21 (March 8, 2019): 84. http://dx.doi.org/10.12681/hnps.2009.

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The p-MOSFET dosimeter studied in this work has been manufactured at LAAS- CNRS Laboratory in Toulouse France, for applications in personal and space dosimetry. They are proposed for proton, heavy ions and electron and photon dose measurements. The current study investigates the sensitivity of this new type of Metal-Oxide-Semiconductor field effect transistor (MOSFET) to electrons. The sensitivity of the new MOSFET based dosemeters to electrons is linear for wide dose ranges. The influence of the electrons energy on the dosemeters response is also investigated.
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2

Mendonça, Eduardo Gomes, Tassio Cortês Cavalcante, Rafael Galhardo Vaz, Evaldo Carlos Fonseca Pereira Junior, and Odair Lelis Gonçalez. "Experimental method for determining the supply current of a PMOS power transistor for use as a RADFET dosimeter." Brazilian Journal of Radiation Sciences 11, no. 1A (2023): 01–12. http://dx.doi.org/10.15392/2319-0612.2023.2117.

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Radiation Sensitive MOSFETs (RADFETs) have been commonly used as ionizing radiation dosimeters. The threshold voltage variation is the main transistor parameter used for radiation dosimetry, as this voltage variation is directly related to total dose and it can be easily determined by using simple measurement and biasing circuits. In this work it is presented a novel experimental method to determine the optimal drain-source current value to be supplied to a p-type MOSFET used in a traditional RADFET configuration (diode connected transistor) for monitoring of the accumulated X- and gamma-radia
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3

Pejović, Milić, Olivera Ciraj-Bjelac, Milojko Kovačević, Zoran Rajović, and Gvozden Ilić. "Sensitivity of P-Channel MOSFET to X- and Gamma-Ray Irradiation." International Journal of Photoenergy 2013 (July 9, 2013): 1–6. http://dx.doi.org/10.1155/2013/158403.

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Investigation of Al-gate p-channel MOSFETs sensitivity following irradiation using 200 and 280 kV X-ray beams as well as gamma-ray irradiation of 60Co in the dose range from 1 to 5 Gy was performed in this paper. The response followed on the basis of threshold voltage shift and was studied as a function of absorbed dose. It was shown that the most significant change in threshold voltage was in the case of MOSFET irradiation in X-ray fields of 200 kV and when the gate voltage was +5 V. For practical applications in dosimetry, the sensitivity of the investigated MOSFETs was also satisfactory for
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4

Kwan, I. S., A. B. Rosenfeld, Z. Y. Qi, et al. "Skin dosimetry with new MOSFET detectors." Radiation Measurements 43, no. 2-6 (2008): 929–32. http://dx.doi.org/10.1016/j.radmeas.2007.12.052.

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5

Fragopoulou, M., S. Siskos, M. Manolopoulou, M. Zamani, and G. Sarrabayrouse. "Thermal neutron dosimetry using MOSFET dosemeters." Radiation Measurements 44, no. 9-10 (2009): 1006–8. http://dx.doi.org/10.1016/j.radmeas.2009.10.082.

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6

Fragopoulou, M., V. Konstantakos, M. Zamani, S. Siskos, T. Laopoulos, and G. Sarrabayrouse. "High sensitivity MOSFET-based neutron dosimetry." Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment 621, no. 1-3 (2010): 611–14. http://dx.doi.org/10.1016/j.nima.2010.06.095.

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7

van Gurp, E. Bloemen. "APPLICATION OF MOSFET DOSIMETRY FOR IN VIVO DOSIMETRY IN RADIOTHERAPY." Radiotherapy and Oncology 92 (August 2009): S49—S50. http://dx.doi.org/10.1016/s0167-8140(12)72718-4.

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8

Cheng, Chee-Wai, Mark Wolanski, Q. Zhao, et al. "Dosimetric characteristics of a single use MOSFET dosimeter for in vivo dosimetry in proton therapy." Medical Physics 37, no. 8 (2010): 4266–73. http://dx.doi.org/10.1118/1.3467753.

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9

Akbas, Ugur, Nazmiye Donmez Kesen, Canan Koksal, and Hatice Bilge. "Surface and Buildup Region Dose Measurements with Markus Parallel-Plate Ionization Chamber, GafChromic EBT3 Film, and MOSFET Detector for High-Energy Photon Beams." Advances in High Energy Physics 2016 (2016): 1–10. http://dx.doi.org/10.1155/2016/8361028.

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The aim of the study was to investigate surface and buildup region doses for 6 MV and 15 MV photon beams using a Markus parallel-plate ionization chamber, GafChromic EBT3 film, and MOSFET detector for different field sizes and beam angles. The measurements were made in a water equivalent solid phantom at the surface and in the buildup region of the 6 MV and 15 MV photon beams at 100 cm source-detector distance for 5 × 5, 10 × 10, and 20 × 20 cm2field sizes and 0°, 30°, 60°, and 80° beam angles. The surface doses using 6 MV photon beams for 10 × 10 cm2field size were found to be 20.3%, 18.8%, a
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10

Melchert, Corinna, Tamer Soror, and György Kovács. "Quality assurance during interstitial brachytherapy: in vivo dosimetry using MOSFET dosimeters." Journal of Contemporary Brachytherapy 10, no. 3 (2018): 232–37. http://dx.doi.org/10.5114/jcb.2018.76748.

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11

Rosenfeld, A. B., G. I. Kaplan, T. Kron, et al. "MOSFET dosimetry of an X-ray microbeam." IEEE Transactions on Nuclear Science 46, no. 6 (1999): 1774–80. http://dx.doi.org/10.1109/23.819153.

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12

B. Rosenfeld, A. "MOSFET Dosimetry on Modern Radiation Oncology Modalities." Radiation Protection Dosimetry 101, no. 1 (2002): 393–98. http://dx.doi.org/10.1093/oxfordjournals.rpd.a006009.

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13

Buehler, M. G., B. R. Blaes, G. A. Soli, and G. R. Tardio. "On-chip p-MOSFET dosimetry (CMOS ICs)." IEEE Transactions on Nuclear Science 40, no. 6 (1993): 1442–49. http://dx.doi.org/10.1109/23.273520.

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14

Fragopoulou, M., V. Konstantakos, M. Zamani, S. Siskos, T. Laopoulos, and G. Sarrabayrouse. "High sensitive depleted MOSFET-based neutron dosimetry." HNPS Proceedings 18 (November 23, 2019): 145. http://dx.doi.org/10.12681/hnps.2562.

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A new dosemeter based on a depleted Metal-Oxide-Semiconductor field effect transistor, sensitive to both neutrons and gamma radiation was manufactured at LAAS-CNRS Laboratory, Toulouse France. In order to be used for neutron dosimetry a thin film of lithium fluoride was deposited on the surface of the gate of the device. The characteristics of the dosemeter such as its response to neutron dose were investigated. The response in thermal neutrons was found to be high. In fast neutrons the response was lower than that of thermal neutrons but higher than the one presented in literature.
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15

Cheung, Tsang, Martin J. Butson, and Peter K. N. Yu. "Effects of temperature variation on MOSFET dosimetry." Physics in Medicine and Biology 49, no. 13 (2004): N191—N196. http://dx.doi.org/10.1088/0031-9155/49/13/n02.

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16

Gonçalves Filho, Luiz C., and Luiz A. P. Santos. "An electronic dosimeter for diagnostic X-ray beams based on a differential amplifier circuit with MOSFETs." EPJ Web of Conferences 288 (2023): 09001. http://dx.doi.org/10.1051/epjconf/202328809001.

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It is known that the device MOSFET works as a dosimeter in radiation beams for cancer radiotherapy. Basically, the radiation beam generates defects in a way that produces in the MOSFET the variation in its threshold voltage, VT, which is proportional to the accumulated radiation dose. Recently, MOSFETs were also tested under X-ray beams commonly used in the energy range applied to medical diagnoses, which is lower energy than radiotherapy. Indeed, it was already shown that the MOSFET drain current varies with the radiation dose for energies in the range applied to diagnostic radiology. In this
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17

Amin, Md Nurul, Robert Heaton, Bern Norrlinger, and Mohammad K. Islam. "Small field electron beam dosimetry using MOSFET detector." Journal of Applied Clinical Medical Physics 12, no. 1 (2010): 50–57. http://dx.doi.org/10.1120/jacmp.v12i1.3267.

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18

Sood, B., S. Deore, D. Fontenla, M. Ahmad, and B. Vikram. "410On line in vivo dosimetry for intracavitary HDR brachytherapy using mosfet dosimetry system." Radiotherapy and Oncology 40 (January 1996): S106. http://dx.doi.org/10.1016/s0167-8140(96)80419-1.

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19

Wang, Chu, Kevin Hill, and Terry Yoshizumi. "Characterization of MOSFET Dosimeter Angular Response Using a Spherical Phantom for Fluoroscopic Dosimetry." Health Physics 110, no. 1 (2016): 45–49. http://dx.doi.org/10.1097/hp.0000000000000370.

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20

Deshpande, Sudesh, Rajesh Kumar, Yogesh Ghadi, R. M. Nehru, and V. Kannan. "Dosimetry Investigation of MOSFET for Clinical IMRT Dose Verification." Technology in Cancer Research & Treatment 12, no. 3 (2013): 193–98. http://dx.doi.org/10.7785/tcrt.2012.500318.

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21

Amin, Md Nurul, Bern Norrlinger, Robert Heaton, and Mohammad Islam. "Image guided IMRT dosimetry using anatomy specific MOSFET configurations." Journal of Applied Clinical Medical Physics 9, no. 3 (2008): 69–81. http://dx.doi.org/10.1120/jacmp.v9i3.2798.

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22

Cheung, Eva YW. "Implementation of MOSFET Detectors for In-Vivo Radiotherapy Dosimetry." Journal of Medical Imaging and Radiation Sciences 46, no. 1 (2015): S18. http://dx.doi.org/10.1016/j.jmir.2015.01.058.

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23

Soubra, M., J. Cygler, and J. Szanto. "2252 Application of MOSFET radiation detector for patient dosimetry." International Journal of Radiation Oncology*Biology*Physics 36, no. 1 (1996): 400. http://dx.doi.org/10.1016/s0360-3016(97)85823-3.

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24

Moreno-Pérez, J. A., I. Ruiz-García, P. Martín-Holgado, et al. "General Purpose Transistor Characterized as Dosimetry Sensor of Proton Beams." Sensors 23, no. 7 (2023): 3771. http://dx.doi.org/10.3390/s23073771.

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A commercial pMOS transistor (MOSFET), 3N163 from Vishay (USA), has been characterized as a low-energy proton beam dosimeter. The top of the samples’ housing has been removed to guarantee that protons reached the sensitive area, that is, the silicon die. Irradiations took place at the National Accelerator Centre (Seville, Spain). During irradiations, the transistors were biased to improve the sensitivity, and the silicon temperature was monitored activating the parasitic diode of the MOSFET. Bias voltages of 0, 1, 5, and 10 V were applied to four sets of three transistors, obtaining an average
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25

Briere, TM, RC Tailor, NB Tolani, et al. "SU-FF-T-203: In Vivo Dosimetry Using Disposable MOSFET Dosimeters for Total Body Irradiation." Medical Physics 32, no. 6Part9 (2005): 1996. http://dx.doi.org/10.1118/1.1997931.

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26

Ravindran, BPaul, ASathish Kumar, and SD Sharma. "Characteristics of mobile MOSFET dosimetry system for megavoltage photon beams." Journal of Medical Physics 39, no. 3 (2014): 142. http://dx.doi.org/10.4103/0971-6203.139002.

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27

Price, R. A., C. Benson, M. J. Joyce, D. J. Kestell, and J. Silvie. "Novel developments in the MOSFET dosemeter for neutron dosimetry applications." Radiation Protection Dosimetry 110, no. 1-4 (2004): 283–90. http://dx.doi.org/10.1093/rpd/nch202.

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28

Bloemen-van Gurp, Esther J., Andre W. H. Minken, Ben J. Mijnheer, Cary J. G. Dehing-Oberye, and Philippe Lambin. "Clinical implementation of MOSFET detectors for dosimetry in electron beams." Radiotherapy and Oncology 80, no. 3 (2006): 288–95. http://dx.doi.org/10.1016/j.radonc.2006.07.002.

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29

Jornet, N., P. Carrascol, V. Panietteri, et al. "8 MOSFET for entrance in vivo dosimetry: a good alternative?" Radiotherapy and Oncology 76 (September 2005): S16. http://dx.doi.org/10.1016/s0167-8140(05)80987-9.

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30

Sors, A., E. Cassol, I. Latorzeff, et al. "Micro-mosfet For Small-field In Vivo Dosimetry In Radiosurgery?" International Journal of Radiation Oncology*Biology*Physics 81, no. 2 (2011): S870. http://dx.doi.org/10.1016/j.ijrobp.2011.06.1551.

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31

Ivanova, Tatjana, Lynn Gilbert, and Dorin A. Todor. "High-dose-rate brachytherapy source tracking by MOSFET dosimetry system." Brachytherapy 8, no. 2 (2009): 130. http://dx.doi.org/10.1016/j.brachy.2009.03.065.

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32

Luo, Guang-Wen, Zhen-Yu Qi, Xiao-Wu Deng, and Anatoly Rosenfeld. "Investigation of a pulsed current annealing method in reusing MOSFET dosimeters for in vivo IMRT dosimetry." Medical Physics 41, no. 5 (2014): 051710. http://dx.doi.org/10.1118/1.4871619.

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33

Fabregat Borrás, R., S. Ruiz-Arrebola, M. Fernández Montes, et al. "EP-1797: Dosimetric characterization of MOSFET detectors for Ir-192 and feasibility for in vivo dosimetry." Radiotherapy and Oncology 123 (May 2017): S986—S987. http://dx.doi.org/10.1016/s0167-8140(17)32159-x.

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34

Varadhan, Raj, John Miller, Brenden Garrity, and Michael Weber. "In vivoprostate IMRT dosimetry with MOSFET detectors using brass buildup caps." Journal of Applied Clinical Medical Physics 7, no. 4 (2006): 22–32. http://dx.doi.org/10.1120/jacmp.v7i4.2278.

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35

Briere, Tina Marie, Ramesh Tailor, Naresh Tolani, et al. "Patient dosimetry for total body irradiation using single-use MOSFET detectors." Journal of Applied Clinical Medical Physics 9, no. 4 (2008): 200–205. http://dx.doi.org/10.1120/jacmp.v9i4.2787.

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36

Jingar, Naresh, Arpit Khandelwal, and Arun Pandya. "Design of programmable current source for MOSFET based gamma dosimetry system." Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment 990 (February 2021): 164944. http://dx.doi.org/10.1016/j.nima.2020.164944.

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37

Kaplan, Greg I., Anatoly B. Rosenfeld, Barry J. Allen, Jeremy T. Booth, Martin G. Carolan, and Andrew Holmes-Siedle. "Improved spatial resolution by MOSFET dosimetry of an x-ray microbeam." Medical Physics 27, no. 1 (2000): 239–44. http://dx.doi.org/10.1118/1.598866.

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38

Cheung, T., M. J. Butson, and P. K. N. Yu. "MOSFET dosimetry in-vivo at superficial and orthovoltage x-ray energies." Australasian Physics & Engineering Sciences in Medicine 26, no. 2 (2003): 81–83. http://dx.doi.org/10.1007/bf03178462.

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39

Manigandan, D., S. Ganesan, P. Aruna, et al. "SU-GG-T-310: Dose Perturbation Caused by MOSFET Dosimeter during in Vivo Dosimetry of Photon and Electron Beam Radiotherapy - a Film Dosimetry Study." Medical Physics 37, no. 6Part20 (2010): 3257. http://dx.doi.org/10.1118/1.3468706.

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40

Amin, M., R. Heaton, B. Norrlinger, and M. Islam. "SU-FF-T-339: Small Field Electron Beam Dosimetry Using MOSFET Detector." Medical Physics 36, no. 6Part14 (2009): 2599. http://dx.doi.org/10.1118/1.3181820.

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41

Bräuer-Krisch, E., A. Bravin, M. Lerch, et al. "MOSFET dosimetry for microbeam radiation therapy at the European Synchrotron Radiation Facility." Medical Physics 30, no. 4 (2003): 583–89. http://dx.doi.org/10.1118/1.1562169.

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42

Scalchi, Paolo, Paolo Francescon, and Priyadarshini Rajaguru. "Characterization of a new MOSFET detector configuration for in vivo skin dosimetry." Medical Physics 32, no. 6Part1 (2005): 1571–78. http://dx.doi.org/10.1118/1.1924328.

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43

Brady, S. L., and R. A. Kaufman. "Establishing a standard calibration methodology for MOSFET detectors in computed tomography dosimetry." Medical Physics 39, no. 6Part1 (2012): 3031–40. http://dx.doi.org/10.1118/1.4712221.

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44

Dias, A. G., L. T. Cunha, A. Oliveira, J. A. M. Santos, and J. Lencart. "Prostate SBRT: The use of ERB and MOSFET in vivo dosimetry feasibility." Physica Medica 32 (September 2016): 201. http://dx.doi.org/10.1016/j.ejmp.2016.07.681.

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45

Rosenfeld, A. B., E. A. Siegbah, E. Brauer-Krish, et al. "Edge-on face-to-face MOSFET for synchrotron microbeam dosimetry: MC modeling." IEEE Transactions on Nuclear Science 52, no. 6 (2005): 2562–69. http://dx.doi.org/10.1109/tns.2005.860704.

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46

Scalchi, Paolo, and P. Francescon. "Calibration of a MOSFET Detection System for 6-MV In Vivo Dosimetry." International Journal of Radiation Oncology*Biology*Physics 40, no. 4 (1998): 987–93. http://dx.doi.org/10.1016/s0360-3016(97)00894-8.

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47

Kinhikar, R. A., R. Upreti, S. Sharma, C. M. Tambe, and D. D. Deshpande. "Intensity modulated radiotherapy dosimetry with ion chambers, TLD, MOSFET and EDR2 film." Australasian Physics & Engineering Sciences in Medicine 30, no. 1 (2007): 25–32. http://dx.doi.org/10.1007/bf03178406.

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48

Han, M. J., S. W. Kang, W. Cho, J. S. Kim, I. A. Kim, and J. B. Chung. "Evaluation of photoconductor and scintillator hybrid dosimeters for radiation therapy quality assurance." Journal of Instrumentation 19, no. 09 (2024): P09035. http://dx.doi.org/10.1088/1748-0221/19/09/p09035.

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Abstract Radiation detectors have two main detection mechanisms: direct conversion, which utilises a photoconductor to directly convert radiation into an electrical signal, and indirect conversion, which utilises a scintillator to convert radiation into visible light, which is subsequently converted into an electrical signal. The photoconductor material, mercury (II) iodide (HgI2) sensitive to visible light, has the property of gradually decreasing signal for repeated irradiation beams. Therefore, this study aimed to improve the signal magnitude and stability to repeated measurements of polycr
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49

Bloemen-van Gurp, Esther, Wim du Bois, Peter Visser, et al. "Clinical dosimetry with MOSFET dosimeters to determine the dose along the field junction in a split beam technique." Radiotherapy and Oncology 67, no. 3 (2003): 351–57. http://dx.doi.org/10.1016/s0167-8140(03)00035-5.

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50

Jornet, N., P. Carrasco de Fez, M. E. Alayrach, T. Eudaldo, R. Garcia, and M. Ribas Morales. "524 oral EVALUATION OF ONE DOSEPLUSTM MOSFET DOSIMETER FOR IN VIVO DOSIMETRY IN HIGH ENERGY X-RAY BEAMS." Radiotherapy and Oncology 99 (May 2011): S213. http://dx.doi.org/10.1016/s0167-8140(11)70646-6.

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