Directionality and head-tail recognition in the keV-range with the MIMAC detector by deconvolution of the ionic signal

Author:

Beaufort Cyprien,Guillaudin Olivier,Muraz Jean-François,Sauzet Nadine,Santos Daniel,Babut Richard

Abstract

AbstractDirectional detection is the only strategy for the unambiguous identification of galactic Dark Matter (DM) even in the presence of an irreducible background such as beyond the neutrino floor. This approach requires measuring the direction of a DM-induced nuclear recoil in the keV-range. To probe such low energies, directional detectors must operate at high gain where 3D track reconstruction can be distorted by the influence of the numerous ions produced in the avalanches. The article describes the interplay between electrons and ions during signal formation in a Micromegas. It introducesSimuMimac, a simulation tool dedicated to high gain detection that agrees with MIMAC measurements. This work proposes an analytical formula to deconvolve the ionic signal induced on the grid from any measurements, with no need for prior norad hocparameter. This deconvolution is experimentally tested and validated, revealing the fine structure of the primary electrons cloud and consequently leading to head-tail recognition in the keV-range. Finally, the article presents how this deconvolution can be used for directionality by reconstructing the spectra of mono-energetic 27 keV and 8 keV neutrons with an angular resolution better than 15°. This novel approach for directionality appears as complementary to the standard one from 3D tracks reconstruction and offers redundancy for improving directional performances at high gain in the keV region.

Publisher

IOP Publishing

Subject

Astronomy and Astrophysics

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Directional detection of keV proton and carbon recoils with MIMAC;Journal of Instrumentation;2024-05-01

2. Directional detection of dark matter with anisotropic response functions;Physical Review D;2023-07-12

3. Directional dark matter searches;SciPost Physics Proceedings;2023-07-03

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