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Multifrequency EPR study on radiation induced centers in calcium carbonates labeled with 13C


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1. Ikeya, M. (Ed.) (1993). Application of electron spin resonancedating, dosimetry and microscopy (Chapter 5). Singapore: World Scientific.10.1142/1854Search in Google Scholar

2. Weihe, H., Piligkos, S., Barra, A. L., Laursen, I., & Johnsen, O. (2009). EPR of Mn2+ impurities in calcite: a detailed study pertinent to marble provenance determination. Archaeometry, 51, 43–48.10.1111/j.1475-4754.2008.00399.xSearch in Google Scholar

3. Callens, F., Vanhaelewyn, G., Matthys, P., & Boesman, E. (1998). EPR of carbonate derived radicals: Applications in dosimetry, dating and detection of irradiated food. Appl. Magn. Reson., 14, 235–254.10.1007/BF03161892Search in Google Scholar

4. Jacobs, C., De Canniere, P., Debuyst, R., Dejehet, F., & Apers, D. (1989). ESR study of gamma-ray irradiated synthetic calcium carbonates. Appl. Radiat. Isot., 40, 1147–1152.10.1016/0883-2889(89)90055-5Search in Google Scholar

5. Katzanberger, O., Debuyst, R., De Canniere, P., Dejehet, F., Apers, D., & Barabas, M. (1989). Temperature experiments on Mollusc samples: an approach to ESR signal identification. Appl. Radiat. Isot., 40, 1113–1118.10.1016/0883-2889(89)90048-8Search in Google Scholar

6. Stachowicz, W., Burlinska, G., & Michalik, J. (1993). Applications of EPR spectroscopy to radiation treated materials in medicine, dosimetry and agriculture. Appl. Radiat. Isot., 44, 423–427.10.1016/0969-8043(93)90260-HSearch in Google Scholar

7. Stachowicz, W., Michalik, J., Burlinska, G., Sadlo, J., Dziedzic-Goclawska, A., & Ostrowski, K. (1995). Detection limits of absorbed dose of ionizing radiation in molluskan shells as determined by EPR spectroscopy. Appl. Radiat. Isot., 46, 1047–1052.10.1016/0969-8043(95)00210-5Search in Google Scholar

8. Stachowicz, W., Sadlo, J., Strzelczak, G., Michalik, J., Bandiera, P., Mazzarello, V., Montella, A., Wojtowicz, A., Kaminski, A., & Ostrowski, K. (1999). Dating of paleoanthropological nuragic skeletal tissues using electron paramagnetic resonance (EPR) spectrometry. Int. J. Anat. Embryol., 109, 19–31.Search in Google Scholar

9. Bhatti, I. A., Akram, K., & Kwon, J.-H. (2012). An investigation into gamma-ray treatment of shellfish using electron paramagnetic resonance spectroscopy. J. Sci. Food Agric., 92, 759–763.10.1002/jsfa.4639Search in Google Scholar

10. Strzelczak, G., Vanhaelewyn, G., Stachowicz, W., Goovaerts, E., Callens, F., & Michalik, J. (2001). Multifrequency EPR study of carbonate and sulfate-derived radicals produced by radiation in shells and corallite. Radiat. Res., 155, 619–624.10.1667/0033-7587(2001)155[0619:MESOCA]2.0.CO;2Search in Google Scholar

11. Wencka, M., Lijewski, S., & Hoffmann, S. K. (2008). Dynamics of CO2 radiation defects in natural calcite studied by ESR, electron spin echo and electron spin relaxation. J. Phys.-Condens. Matter, 20, 255237(10pp.).10.1088/0953-8984/20/25/255237Search in Google Scholar

12. Jaegermann, Z., Michałowski, S., Karaś, J., & Polesiński, Z. (2002). Preparation of synthetic biomaterials based on calcium carbonate. Szkło i Ceramika, 4, 3–9 (in Polish).Search in Google Scholar

13. Bogushevich, S. E., & Ugolev, I. I. (2005). Stabilization of ion-radicals in the structure of calcium sulfite. J. Appl. Spectr., 72, 419–425.10.1007/s10812-005-0092-7Search in Google Scholar

14. Debuyst, R., Dejehet, F., & Idrissi, S. (1993). Isotropic CO3 and CO2 radicals in γ-irradiated monohydrocalcite. Radiat. Prot. Dosim., 47, 659–664.10.1093/rpd/47.1-4.659Search in Google Scholar

15. DeCanniere, P., Debuyst, R., Dejeht, F., & Apers, D. (1988). ESR study of internally α-irradiated (210Po nitrate doped) calcite single crystal. Nucl. Tracks, 14, 267–273.10.1016/1359-0189(88)90075-1Search in Google Scholar

eISSN:
0029-5922
Język:
Angielski
Częstotliwość wydawania:
4 razy w roku
Dziedziny czasopisma:
Chemistry, Nuclear Chemistry, Physics, Astronomy and Astrophysics, other