A Compact High-Resolution Muon Spectrometer Using Multi-Layer Gas Cherenkov Radiators
Junghyun Bae, Stylianos Chatzidakis

TL;DR
This paper introduces a novel high-resolution muon spectrometer using multi-layer gas Cherenkov radiators, offering an alternative to magnetic spectrometers with comparable resolution and potential benefits for cosmic ray and particle physics applications.
Contribution
The paper proposes a new muon momentum measurement method utilizing multi-layer gas Cherenkov radiators with variable refractive index, achieving high resolution without magnetic fields.
Findings
Achieves a momentum resolution of ±0.05 GeV/c over 0.1-10 GeV/c range.
Correctly classifies muon momentum with approximately 87% accuracy.
Provides an alternative to bulky magnetic spectrometers for muon detection.
Abstract
In both particle physics and cosmic ray muon applications, a high-resolution muon momentum measurement capability plays a significant role not only in providing valuable information on the properties of subatomic particles but also in improving the utilizability of muons. Currently, muon momentum is estimated by reconstructing the muon path using a strong magnetic field and muon trackers. Alternatively, time-of-flight or multiple Coulomb scattering techniques are less frequently applied, especially when there is a need to avoid using a magnetic field. However, the measurement resolution is much lower than that of magnetic spectrometers, approximately 20% in the muon momentum range of 0.5 to 4.5 GeV/c whereas it is nearly 10% or less when using magnets and trackers. Here, we propose a different paradigm to estimate muon momentum that utilizes multi-layer pressurized gas Cherenkov…
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Taxonomy
TopicsParticle Detector Development and Performance · Dark Matter and Cosmic Phenomena · Neutrino Physics Research
