Acta Anthropologica Sinica ›› 2022, Vol. 41 ›› Issue (04): 712-730.doi: 10.16359/j.1000-3193/AAS.2022.0032
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Received:
2022-04-15
Revised:
2022-05-22
Online:
2022-08-12
Published:
2022-08-10
CLC Number:
ZHANG Jiafu. Reliability and upper age limit of luminescence dating for the Paleolithic and paleoanthropological sites[J]. Acta Anthropologica Sinica, 2022, 41(04): 712-730.
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URL: https://www.anthropol.ac.cn/EN/10.16359/j.1000-3193/AAS.2022.0032
Fig.2 The basic principle of luminescence dating of sediments PMT refers to photomultiplier; (a) Sediment grains are exposed to sunlight during transportation, their luminescence signals are bleached and zeroed. The grains are irradiated by α-particles, beta and gamma rays during the burial period (b), and the signals have been accumulated until sampling for OSL measurement.
Fig.3 Growth (dose-response) curves for quartz obtained using the single-aliquot regenerative-dose protocol (a) The curve is fitted using a single saturation exponential function. The OSL signal (I) is saturated when the regenerative dose (D) reaches 600 Gy, and the characteristic saturation dose (D0) of the curve is 112 Gy. The natural signal is projected onto the fitted growth curve to estimate the De value by interpolation. This sample (HS11-1) is fluvial sediment from the Huéscar-1 site in Spain[31,32]. (b) Growth curve was fitted using double saturating exponential function. The OSL signal increases with increasing dose when the dose was larger than 1500 Gy, the two characteristic saturation doses are 71 Gy and 828 Gy, respectively. This sample from the Panxian Dadong cave in Guizhou province[33]. (c) The effect of the slope of a growth curve on De error (see details in reference [26]). When the natural luminescence signals are close to the maximum level of the curve, the corresponding De obtained may be underestimated [34,35]
Fig.4 The normal or Gaussian distribution and standard deviation the age in the figure is an example; µ and σ refer to mean and standard deviation, respectively
Fig.6 Comparison of potassium feldspar and quartz OSL ages with their corresponding independent ages obtained by other dating methods The lines in the figures are 1:1 lines or ratios, and the error bars for each data point refer to 1σ error. (a) The two-step pIRIR ages of potassium feldspar for 116 samples around the world, and (b) Multi-elevated-temperature (METor pMET) pIRIR ages of potassium feldspar from 45 samples from Europe and Asia, where Lx, Tx and Lx/Tx respectively represent regeneration-dose (or natural) OSL, test-dose OSL and sensitivity-corrected OSL signals (modified from reference [4]); (c) The quartz OSL ages of the 152 samples from all over the world. The samples are fluvial, eolian, ocean, and glacial sediments, which were well bleached prior to deposition. n = the number of samples, followed by the percentage of samples within ±2σ error of the 1:1 line (modified from reference [26])
Fig.7 The time range of hominin taxa currently recognized and the age range and luminescence dating Luminescence dating range: The double arrows indicate the approximate interval where reliable luminescence ages can be obtained (modified from reference [25])
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