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Cross-Calibration of an α-Source Used for Luminescence Dating by Applying Different Samples and Procedures Cover

Cross-Calibration of an α-Source Used for Luminescence Dating by Applying Different Samples and Procedures

Open Access
|Jun 2021

References

  1. Aitken MJ, 1985a. Thermoluminescence Dating. Studies in Archaeological Science. Academic Press, London.
  2. Aitken MJ, 1985b. Alpha particle effectiveness: Numerical relationship between systems. Ancient TL 3: 22–25.
  3. Aitken MJ, 1998. An Introduction to Optical Dating: The Dating of Quaternary Sediments by the use of Photon-Stimulated Luminescence. Oxford University Press, Oxford.
  4. Aitken MJ, and Bowman SGE, 1975. Thermoluminescent dating: Assessment of alpha particle contribution. Archaeometry 17(1): 132–138, DOI:10.1111/j.1475-4754.1975.tb00127.x.
  5. Bell WT, 1980. Alpha dose attenuation in quartz grains for thermoluminescence dating. Ancient TL 12: 4–8.
  6. Bos AJJ., Wallinga J, Johns C, Abellon RD, Brouwer JC, Schaart DR and Murray AS, 2006. Accurate calibration of a laboratory beta particle dose rate for dating purposes. Radiation Measurements 41(7–8): 1020–1025, DOI:10.1016/j.radmeas.2006.04.003.
  7. Bøtter-Jensen L, Bulur E, Duller GAT and Murray AS, 2000. Advances in luminescence instrument systems. Radiation Measurements 32(5–6): 523–528, DOI:10.1016/S1350-4487(00)00039-1.
  8. Bøtter-Jensen L, Thomsen KJ and Jain M, 2010. Review of optically stimulated luminescence (OSL) instrumental developments for retrospective dosimetry. Radiation Measurements 45(3–6): 253–257, DOI:10.1016/j.radmeas.2009.11.030.
  9. Bowman SGE and Huntley DJ, 1984. A new proposal for the expression of alpha efficiency in TL dating. Ancient TL 2: 6–8.
  10. Brennan BJ and Lyons RG, 1989. Ranges of alpha particles in various media. Ancient TL 7: 33–37.
  11. Buechi MW, Lowick SE, Anselmetti FS, 2017. Luminescence dating of glaciolacustrine silt in overdeepened basin fills beyond the last interglacial. Quaternary Geochronology 37: 55–67, DOI:10.1016/j.quageo.2016.09.009.
  12. Dietze M, Kreutzer S, Burow C, Fuchs MC, Fischer M and Schmidt C, 2016. The abanico plot: Visualising chronometric data with individual standard errors. Quaternary Geochronology 31: 12–18, DOI:10.1016/j.quageo.2015.09.003.
  13. Duller GAT, 2015. The analyst software package for luminescence data: Overview and recent improvements. Ancient TL 33: 35–42.
  14. Fleming S, 1979. Thermoluminescence Techniques in Archaeology. Clarendon Press, Oxford.
  15. Franklin AD and Hornyak WF, 1992. Normalization of inclusion size quartz TL data. Ancient TL 10: 1–6.
  16. Gao L, Long H, Tamura T, Ye L, Hou Y, Shen J, 2020. Refined chronostratigraphy of a late Quaternary Sedimentary sequence from the Yangtze River delta based on K-feldspar luminescence dating. Marine Geology 427: 106271. DOI:10.1016/j.margeo.2020.106271.
  17. Göksu HY, Bailiff IK, Bøtter-Jensen L, Brodski L, Hütt G and Stoneham D, 1995. Interlaboratory beta source calibration using TL and OSL on natural quartz. Radiation Measurements 24(4): 479–483, DOI:10.1016/1350-4487(95)00258-G.
  18. Guérin G and Valladas H, 2014. Cross-calibration between beta and gamma sources using quartz OSL: Consequences of the use of the SAR protocol in optical dating. Radiation Measurements 68: 31–37, DOI:10.1016/j.radmeas.2014.06.010.
  19. Hansen V, Murray AS, Buylaert JP, Yeo EY and Thomsen K, 2015. A new irradiated quartz for beta source calibration. Radiation Measurements 81: 123–127, DOI:10.1016/j.radmeas.2015.02.017.
  20. Hansen V, Murray AS, Thomsen K, Jain M, Autzen M and Buylaert JP, 2018. Towards the origins of over-dispersion in beta source calibration. Radiation Measurements 120: 1–6, DOI:10.1016/j.radmeas.2018.05.014.
  21. Kadereit A and Kreutzer S, 2013. Risø calibration quartz – A challenge for β-source calibration. An applied study with relevance for luminescence dating. Measurement 46(7): 2238–2250, DOI:10.1016/j.measurement.2013.03.005.
  22. Kreutzer S, Schmidt C, DeWitt R and Fuchs M, 2014. The a-value of polymineral fine grain samples measured with the post-IR IRSL protocol. Radiation Measurements 69: 18–29, DOI:10.1016/j.radmeas.2014.04.027.
  23. Mauz B, Bode T, Mainz E, Blanchard H, Hilger W, Dikau R and Zöller L, 2002. The luminescence dating laboratory at University of Bonn: Equipment and procedures. Ancient TL 20(2): 53–61.
  24. Mauz B, Packman S and Lang A, 2006. The alpha effectiveness in silt-sized quartz: New data obtained by single and multiple aliquot protocols Ancient TL 24(2): 47–52.
  25. Murray AS and Wintle AG, 2003. The single aliquot regenerative dose protocol: Potential for improvements in reliability. Radiation Measurements 37(4–5): 377–381, DOI:10.1016/S1350-4487(03)00053-2.
  26. Ogata M, Hasebe N, Fujii N and Yamakawa M, 2017. Measuring apparent dose rate factors using beta and gamma rays, and alpha efficiency for precise thermoluminescence dating of calcite. Journal of Mineralogical and Petrological Sciences 112: 336–345.
  27. Rees-Jones J, 1995. Optical dating of young sediments using fine-grain quartz. Ancient TL, 13: 9–14.
  28. Richter D, Pintaske R, Dornich K and Krbetschek M, 2012. A novel beta source design for uniform irradiation in dosimetric applications. Ancient TL 30(2): 57–63.
  29. Richter D, Richter A and Dornich K, 2013. Lexsyg – A new system for luminescence research. Geochronometria 40(4): 220–228, DOI:10.2478/s13386-013-0110-0.
  30. Richter D, Richter A and Dornich K, 2015. Lexsyg smart – A luminescence detection system for dosimetry, material research and dating application. Geochronometria 42(1): 202–209, DOI:10.1515/geochr-2015-0022.
  31. Richter D, Zink AJC., Przegietka KR, Cardoso GO, Gouveia MA and Prudêncio MI, 2003. Source calibrations and blind test results from the new Luminescence Dating Laboratory at the Instituto Tecnológico e Nuclear, Sacavém, Portugal. Ancient TL 21(1): 43–48.
  32. Schmidt C, Bösken J and Kolb T, 2018. Is there a common alpha-efficiency in polymineral samples measured by various infrared stimulated luminescence protocols?. Geochronometria 45: 160–172, DOI:10.1515/geochr-2015-0095.
  33. Singhvi AK and Aitken MJ, 1978. Americium-241 for alpha irradiations. Ancient TL 3: 2–9.
  34. Sipos Gy, Kiss T and Tóth O, 2016. Constraining the age of flood-plain levels along the lower section of River Tisza, Hungary. Journal of Environmental Geography 9(1–2): 39–44, DOI:10.1515/jengeo-2016-0006.
  35. Sipos Gy, Marković SB, Filyó D, Tóth O, Gavrilov MB, Nagy I, Lukic T, Bartyik T, Kiss T, Mezősi G, (in prep). Aeolian dust deposition during the last glacial cycle at the centre of the Backa Loess Plateau, Vojvodina, Serbia.
  36. Thiel C, Buylaert JP, Murray AS, Terhorst B, Hofer I, Tsukamoto S and Frechen M, 2011. Luminescence dating of the Stratzing loess profile (Austria) – Testing the potential of an elevated temperature post-IR IRSL protocol. Quaternary International 234: 23–31, DOI:10.1016/j.quaint.2010.05.018.
  37. Thomsen KJ, Murray AS, Jain M and Bøtter-Jensen L, 2008. Laboratory fading rates of various luminescence signals from feldspar-rich sediment extracts. Radiation Measurements 43: 1474–1486, DOI:10.1016/j.radmeas.2008.06.002.
  38. Tribolo C, Kreutzer S and Mercier N, 2019. How reliable are our beta-source calibrations? Ancient TL, 37(1): 1–10.
  39. Zimmerman DW, 1971. Thermoluminescent dating using fine grains from pottery. Archaeometry 13(1): 29–52.
  40. Zimmerman DW, 1972. Relative thermoluminescence effects of alpha- and beta-irradiation. Radiation Effects 14: 81–92, DOI:10.1080/00337577208230476.
Language: English
Page range: 61 - 72
Submitted on: May 30, 2020
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Accepted on: Feb 12, 2021
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Published on: Jun 29, 2021
Published by: Sciendo
In partnership with: Paradigm Publishing Services
Publication frequency: 1 issue per year

© 2021 György Sipos, Christoph Schmidt, Tamás Bartyik, Dávid Filyó, Gergő Magyar, Viktor Havasi, Ákos Kukovecz, published by Sciendo
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.