Quartz as a natural luminescence dosimeter

被引:304
作者
Preusser, Frank [1 ]
Chithambo, Makaiko L. [2 ]
Goette, Thomas [1 ]
Martini, Marco [3 ,8 ]
Ramseyer, Karl [1 ]
Sendezera, Emmanuel J. [4 ]
Susino, George J. [5 ]
Wintle, Ann G. [6 ,7 ]
机构
[1] Univ Bern, Inst Geol, CH-3012 Bern, Switzerland
[2] Rhodes Univ, Dept Phys & Elect, ZA-6140 Grahamstown, South Africa
[3] Univ Milano Bicocca, Dipartimento Sci Mat, I-20125 Milan, Italy
[4] Univ Zululand, Dept Phys, ZA-3886 Kwa Dlangezwa, South Africa
[5] Univ Witwatersrand, Sch Geosci, ZA-2050 Johannesburg, South Africa
[6] Aberystwyth Univ, Inst Geog & Earth Sci, Aberystwyth SY23 3DB, Dyfed, Wales
[7] Univ Cambridge, Dept Geog, Cambridge CB2 3EN, England
[8] Ist Nazl Fis Nucl, I-00044 Frascati, Rome, Italy
基金
瑞士国家科学基金会; 新加坡国家研究基金会;
关键词
quartz; luminescence; OSL; TL; point defects; dating; OPTICALLY-STIMULATED LUMINESCENCE; TIME-RESOLVED LUMINESCENCE; RADIATION-INDUCED MOBILITY; REGENERATIVE-DOSE PROTOCOL; RAY-INDUCED LUMINESCENCE; EMITTING-DIODE SYSTEM; FINE-GRAINED QUARTZ; SINGLE-GRAIN; RED-THERMOLUMINESCENCE; THERMO-LUMINESCENCE;
D O I
10.1016/j.earscirev.2009.09.006
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Luminescence from quartz is commonly used in retrospective dosimetry. in particular for the dating of archaeological materials and sediments from the Quaternary period. The phenomenon of luminescence is related to the interaction of natural radiation with mineral grains, by the activation of and subsequent trapping of electrons at defects within the quartz lattice. The latent luminescence signal (i.e. the trapped electrons) is released when the grains are exposed to stimulation energy in the form of light or heat. Despite the fact that quartz is most nominally pure SiO2, the mineral forms in several different geological settings, i.e. under different pressure and temperature conditions. The luminescence emitted from quartz is complex and shows a variety of different components with diverse physical properties. This complexity is explained by the variety of defects in quartz that are either intrinsic (e.g., Si and O vacancies) or related to impurity atoms (e.g., Al or Ti). The concentration of impurity-related defects is dependent on the conditions of mineral formation or subsequent alteration. Experimental data have shown that the luminescence properties of quartz are highly variable with geological source and vary even at a grain-to-grain level within a sediment. As a consequence, caution is needed when making any general statements about the luminescence properties of quartz. When using luminescence measurements as a dating technique, it is necessary to adjust the measurement procedures for each geological provenance. Furthermore, some quartz has luminescence properties that make it problematic, or even unsuitable, for certain applications. These problems can arise from low and changing luminescence sensitivity, thermal transfer of trapped electrons, thermal instability of the trapped electrons and low saturation dose. Reviewing the present knowledge reveals that insufficient information is available either to unambiguously link distinctive lattice defects with characteristic luminescence components, or even to explain problems observed in application studies by potential dynamics of the defects within the crystal. This paper gives some ideas on how future research could utilise innovative analytical tools to identify or map the distribution of lattice defects and how practitioners could relate lattice defects to measured luminescence properties of quartz. (C) 2009 Elsevier B.V. All rights reserved.
引用
收藏
页码:184 / 214
页数:31
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