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Refined Sensitivity Estimates for Single-Molecule Magnet Dark Matter Detectors

High Energy Physics - Phenomenology 2026-07-02 v1 Instrumentation and Detectors

Abstract

We revisit the sensitivity of Single Molecule Magnet (SMM) crystals as detectors for low-mass dark matter. In previous work, we established the concept of the ``magnetic bubble chamber'', where energy deposited by dark matter triggers a magnetic avalanche in a metastable crystal. The original sensitivity estimates relied on a conservative criterion requiring the spin relaxation time to be strictly shorter than the thermal diffusion time. Here, we demonstrate that this criterion effectively ignores the stochastic nature of spin relaxation. We derive a refined analytic estimate which accounts for the fraction of spins that relax even when diffusion is fast. We show that the Zeeman energy released by this fraction contributes to local heating, significantly lowering the energy threshold for avalanche formation. We present simulation results confirming this effect and report on experimental verification of the assumed low-temperature thermal properties of two representative SMM crystals, Mn12_{12}-acetate and Mn32_{32}. Together, these efforts extend this pathfinder program toward the realization of SMM-based detectors with controlled material properties and enhanced dark matter sensitivity.

Cite

@article{arxiv.2607.01868,
  title  = {Refined Sensitivity Estimates for Single-Molecule Magnet Dark Matter Detectors},
  author = {Andrew Eberhardt and Tomoya Fukui and Ryosuke Takehara and Ryotaro Ohno and Yuta Mizukami and Kenichiro Hashimoto and Takanori Fukushima and Shigeki Matsumoto and Tom Melia and Kouki Nozaki and Surjeet Rajendran},
  journal= {arXiv preprint arXiv:2607.01868},
  year   = {2026}
}

Comments

11 pages, 5 figures

R2 v1 2026-07-22T20:22:32.250Z