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arXiv · 2507.17782

SPLENDOR: a novel detector platform to search for light dark matter with narrow-gap semiconductors

Abstract

We present the design and current status of SPLENDOR, a novel detector platform that combines narrow-gap semiconductor targets with low-noise charge readout to achieve sensitivity to dark matter energy deposits well below the eV scale. SPLENDOR is designed to be a modular and scalable system able to accommodate different target materials and signal readout technologies. SPLENDOR's present strategy entails: (i) the use of strongly correlated f-electron semiconductors with anisotropic electronic structures to enable not only sub-eV energy thresholds, but also directional sensitivity to the incoming dark matter flux, allowing for signal-background discrimination via daily modulation, and (ii) custom charge readout based on cryogenic high-electron-mobility transistor (cryoHEMT) amplifiers approaching single-electron resolution. We report on the selection and characterization of Eu$_5$In$_2$Sb$_6$ as the target material for SPLENDOR's first prototype detector, as well as the development and calibration of the prototype amplifier chain, achieving a measured charge resolution of 20$\pm$7 electrons in silicon test samples, consistent with predicted performance. This provides a demonstration of the detector architecture, which is now ready for deployment in a dark matter search campaign to deliver SPLENDOR's first science results. Finally, we present estimates of sensitivity reach in the parameter space of athermally produced relic dark matter under high- and low-background environments, and for various amplifier technology upgrades with increasing performance, including planned quantum sensing upgrades in order to achieve our ultimate goal of sub-electron resolution in optimized systems. SPLENDOR provides a novel approach to dark matter direct detection, combining quantum sensing with material's design to open new avenues of exploration in the sub-MeV mass range of dark matter parameter space.

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P. Abbamonte, A. Albert, D. S. M. Alves, J. Anczarski, T. Aralis, T. U. Böhm, C. Boyd, J. Chen, P. -H. Chu, M. S. Cook, C. W. Fink, M. L. Graesser, Y. Kahn, C. S. Kengle, T. Kucinski, N. A. Kurinsky, C. Lane, A. Leder, R. Massarczyk, A. Mazumdar, S. J. Meijer, W. Nie, E. A. Peterson, A. Phipps, F. Ronning, P. F. S. Rosa, I. Rydstrom, N. S. Sirica, Z. J. Smith, K. Stifter, S. M. Thomas, S. L. Watkins, B. A. Young, J. -X. Zhu. 2025-07-23. SPLENDOR: a novel detector platform to search for light dark matter with narrow-gap semiconductors. https://arxiv.org/abs/2507.17782

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