Dark Matter Detector Radioimpurities $^{129}$I and $^{210}$Pb Measured with Accelerator Mass Spectrometry
Zuzana Slavkovsk\'a, Ferdos Dastgiri, L.Keith Fifield, Michaela B.Froehlich, Michael A.C.Hotchkis, Dominik Koll, Silke Merchel, Stefan Pavetich, Stephen G.Tims, Anton Wallner

TL;DR
This study measures radioactive impurities $^{129}$I and $^{210}$Pb in NaI(Tl) crystals using accelerator mass spectrometry, crucial for ensuring ultra-high purity in dark matter detection materials.
Contribution
It demonstrates the suitability of specific NaI powders and lead compounds for low-background dark matter experiments through precise impurity quantification.
Findings
Consistent $^{129}$I/$^{127}$I ratio across samples.
Pb$_3$O$_4$ meets activity limits for $^{210}$Pb.
NaI powder choice has negligible impact on $^{129}$I}.
Abstract
Sodium iodide crystals doped with thallium NaI(Tl) can be used as detector material for direct dark matter detection by taking advantage of their particle detection properties of scintillation. In order to achieve this, it is crucial that these crystals are of ultra-high purity. Radioimpurities within the crystals may potentially mimic dark matter signals and thus must be quantified, minimised where possible and distinguished from real events. Abundances of radionuclides I and Pb, which are dominant sources of radioimpurities in NaI(Tl) crystals, were measured using accelerator mass spectrometry at the Australian National University (ANU) and the Australian Nuclear Science and Technology Organisation (ANSTO). NaI powder chemically processed to AgI, and, for the first time, unprocessed NaI powder, were shown to be suitable as AMS targets. A consistent I/I…
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Taxonomy
TopicsRadioactive Decay and Measurement Techniques · Dark Matter and Cosmic Phenomena · Nuclear physics research studies
