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Effect of microwave power on EPR spectra of natural and synthetic dental biocompatible materials

applications. Dent Mater. pii , S0109-5641(14)00154-7. DOI: 10.1016/j.dental.2014.05.022. 4. Pazarlioglu, S. S., Gokce, H., & Ozyegin, S. (2014). Effect of sintering on the microstructural and mechanical properties of melagris gallopova hydroxyapatite. Biomed. Mater. Eng ., 24 (4), 1751–1769. 5. Sanchez, M. C., Llama-Palacios, A., Fernandez, E., Figuero, E., Marin, M. J., Leon, R., Blanc, V., Herrera, D., & Sanz, M. (2014). An in vitro biofilm model associated to dental implants: Structural and quantitative analysis of in vitro biofilm formation on

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A comparative study of hyperfine interactions in Aurivillius compounds prepared by mechanical activation and solid-state sintering

comparative study. Arch. Metall. Mater., 61, 869-874. DOI: 10.1515/amm-2016-0147. 6. Jartych, E., Pikula, T., Mazurek, M., Lisińska-Czekaj, A., Czekaj, D., Gąska, K., Przewoźnik, J., Kapusta, C., & Surowiec, Z. (2013). Antiferromagnetic spin glass-like behavior in sintered multiferroic Aurivillius Bim+1Ti3Fem-3O3m+3 compounds. J. Magn. Magn. Mater., 342, 27-34. DOI: 10.1016/j.jmmm.2013.04.046. 7. Mazurek, M., Jartych, E., Lisińska-Czekaj, A., Czekaj, D., & Oleszak, D. (2010). Structure and hyperfi ne interactions of Bi9Ti3Fe5O27 multiferroic

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Iron-containing phases in metallurgical and coke dusts as well as in bog iron ore

, J. K., Smith, S. C., Dohnalkova, A. C., & Russell, C. K. (2003). Transformation of 2-line ferrihydrite to 6-line ferrihydrite under oxic and anoxic conditions. Am. Miner., 88, 1903-1914. DOI: 0003-004X/03/1112-1903$05.00. 36. Michel, F. M., Ehm, L., Antao, S. M., Lee, L. P., Chupas, P. J., Liu, G., Strongin, D. R., Schoonen, M. A. A., Phillips, B. L., & Parise, J. B. (2007). The structure of ferrihydrite, a nanocrystalline material. Science, 316(5832), 1726-1729. DOI: 10.1126/science.1142525. 37. Stevens, J. G., Khasanov, A. M

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Important problems of future thermonuclear reactors

, 57 (1), 11–24. 8. Hurricane, O. A., Callahan, D. A., Casey, D. T., Celliers, P. M., Cerjan, C., Dewald, E. L., Dittrich, T. R., Döppner, T., Hinkel, D. E., Berzak Hopkins, L. F., Kline, J. L., Le Pape, S., Ma, T., MacPhee, A. G., Milovich, J. L., Pak, A., Park, H. -S., Patel, P. K., Remington, B. A., Salmonson, J. D., Springer, P. T., & Tomassini, R. (2014). Fuel gain exceeding unity in an inertially confined fusion implosion. Nature , 506 , 343–348. DOI: 10.1038/nature13008. 9. http://www.efda.org/2013/05/jet-the-joint-europeantorus/ . 10

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Overview of processing technologies for tungsten-steel composites and FGMs for fusion applications

., & Zivelonghi, A. (2013). Recent progress in research on tungsten materials for nuclear fusion applications in Europe. J. Nucl. Mater. , 432 (1/3), 482–500. DOI: 10.1016/j.jnucmat.2013.03.062. 3. Missiaen, J. M., Raharijaona, J. J., Antoni, A., Pascal, C., Richou, M., & Magaud, P. (2011). Design of a W/steel functionally graded material for plasma facing components of DEMO. J. Nucl. Mater. , 416 (3), 262–269. DOI: 10.1016/j.jnucmat.2011.05.054. 4. Weber, T., Stueber, M., Ulrich, S., Vaßen, R., Basuki, W. W., Lohmiller, J., Sittel, W., & Aktaa, J. (2013

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Degradation and detoxification of 2-chlorophenol aqueous solutions using ionizing gamma radiation

. Environ. Safe. , 72 (3), 948–953. DOI: 10.1016/j.ecoenv.2008.05.006. 19. Basfar, A. A., Khan, H. M., Al-Shahrani, A. A., & Cooper, W. J. (2005). Radiation induced decomposition of methyl tert-butyl ether in water in presence of chloroform: Kinetic modelling. Water Res. , 39 (10), 2085–2095. DOI: 10.1016/j.watres.2005.02.019. 20. Basfar, A. A., Khan, H. M., & Al-Shahrani, A. A. (2005). Trihalomethane treatment using gamma irradiation: Kinetic modeling of single solute and mixtures. Radiat. Phys. Chem. , 72 (5), 555–563. DOI: 10.1016/j.radphyschem.2004

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Ambient dose equivalent measurements in secondary radiation fields at proton therapy facility CCB IFJ PAN in Krakow using recombination chambers

References 1. National Association for Proton Therapy. (2014). Retrieved August 20, 2014, from http://www.proton-therapy.org/facts.htm . 2. Fowler, J. F. (2003). What can we expect from dose escalation using proton beams. Clin. Oncol ., 15 (1), S10–S15. DOI: 10.1053/clon.2002.0182. 3. Xu, X. G., Bednarz, B., & Paganetti, H. (2008). A review of dosimetry studies on external-beam radiation treatment with respect to second cancer induction. Phys. Med. Biol ., 53 , 193–241. DOI: 10.1088/0031-9155/53/13/R01. 4. Chung, C. S., Keating, N

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Mössbauer and heat capacity studies of ErZnSn2

., Rams, M., Schmidt, T., Kotzyba, G., Pöttgen, R., & Johrendt, D. (2003). Structure and properties of CeRhSn - a valence fl uctuating system. Acta Phys. Pol. B, 34(2), 1225-1229. 14. Łątka, K., Kmieć, R., Gurgul, J., Rams, M., Pacyna, A. W., Schmidt, T., & Pöttgen, R. (2005). Structure, magnetic properties and 119Sn Mössbauer spectroscopy of PrRhSn. J. Solid State Chem., 178, 3101-3109. DOI: 10.1016/j.jssc.2005.06.041. 15. Schmidt, T., Johrendt, D., Sebastian, C. P., Pöttgen, R., Łątka, K., & Kmieć, R. (2005). Structure, chemical bonding

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Toward a European Network of Positron Laboratories

semiconductor studies. J. Alloy. Compd ., 382 (1/2), 244–251. DOI: 10.1016/j.jallcom.2004.05.037. 4. Dupasquier, A., Kögel, G., & Somoza, A. (2004). Studies of light alloys by positron annihilation techniques. Acta Mater ., 52 , 4707. DOI: 10.1016/j.actamat.2004.07.004. 5. Goworek, T., Zaleski, R., & Wawryszczuk, J. (2004). Observation of intramolecular defects in n-alkanes C 25 H 52 -C 29 H 60 by the positron annihilation method. Chem. Phys. Lett ., 394 , 90–92. DOI: 10.1016/j.cplett.2004.06.116 6. Śniegocka, M., Jasińska, B., Goworek, T., & Zaleski

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Ion acceleration from intense laser-generated plasma: methods, diagnostics and possible applications

–148). Singapore: World Scientific Publ. 5. Cirrone, G. A. P., Carpinelli, M., Cuttone, G., Gammino, G., Bijan Jia, S., Korn, G., Maggiore, M., Manti, L., Margarone, D., Prokupek, J., Renis, M., Romano, F., Schillaci, F., Tomasello, B., Torrisi, L., Tramontana, A., & Velyhan, A. (2013). ELIMED, future hadrontherapy applications of laser-accelerated beams. Nucl. Instrum. Methods Phys. Res. Sect. A-Accel. Spectrom. Dect. Assoc. Equip. , 730 , 174–177. DOI: 10.1016/J.nima.2013.05.051. 6. Torrisi, L., Caridi, F., Giuffrida, L., Torrisi, A., Mondio, G., Serafino, T

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