Characterisation of the PTB ion counter nanodosimeter's target volume and its equivalent size in terms of liquid H2O
Gerhard Hilgers (1), Thomas Braunroth (1,2), Hans Rabus (1,3) ((1), Physikalisch-Technische Bundesanstalt (PTB), Braunschweig, Germany (2), Gesellschaft f\"ur Anlagen- und Reaktorsicherheit (GRS), K\"oln, Germany (3), Physikalisch-Technische Bundesanstalt (PTB), Berlin, Germany)

TL;DR
This study characterizes the target volume of the PTB ion counter nanodosimeter in terms of liquid water, demonstrating its suitability as a benchmark for DNA damage modeling in nanometric volumes.
Contribution
It introduces a method to determine the nanodosimeter's target volume in liquid water and validates its use as benchmark data for radiation damage modeling.
Findings
Simulated target sizes agree well with measurements.
Scaling laws allow estimation of target volume in liquid H2O.
Nanodosimeter can realize a wide range of target volumes.
Abstract
For the first time a dedicated investigation of the target size of a nanodosimeter device has been carried out in order to investigate to what extent measured ionisation cluster size distributions can serve as benchmark data for modelling approaches, with particular focus on the target size in terms of liquid H2O. To this end, measurements with alpha particles from a 241Am source were carried out using three different target gases, H2O, C3H8 and C4H8O. For each of the three target gases, three different drift-time windows were applied to realise three different target sizes. A method has been developed to determine the dimensions of the simulated nanometric target volume in liquid H2O for cylindrical and spherical shape, as often used in approaches to model radiation effects to DNA. Simulations with nanometric targets of dimensions determined with this method agree very well with the…
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