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A microwave SQUID multiplexing concept for macro-cryogenic calorimeter arrays

N. Ferreiro Iachellini, P. Szypryt, L. Canonica, W. B. Doriese, M. Durkin, A. Giachero, J. A. B. Mates, A. Nucciotti, L. Pattavina, S. Quitadamo, C. Shiu, J. N. Ullom, M. R. Vissers

physics.ins-detarXiv:2608.27556

Abstract

Massive cryogenic calorimeters read out by transition-edge sensors (TES) can reach eV-scale baseline resolution, but the single-channel dc-SQUID readout conventionally used in rare-event searches, with one amplifier chain and several wires per detector, limits practical arrays to a few tens of channels. We propose to apply microwave SQUID multiplexing (μMUX), developed for fast X-ray and neutrino-mass microcalorimeters, to massive BGO (Bi4Ge3O12) calorimeters operated at 20~mK; sapphire and TeO2 absorbers are covered by the same framework. Using the established thermal and noise model for massive TES calorimeters, we derive a noise model for the multiplexed readout, including the HEMT, two-level-system and SQUID contributions, and its scaling with the multiplexing factor N mux. Since the slow thermal signals require only about a kHz of sampling per channel, the limiting requirement is not bandwidth but an input-coil sensitivity of ( 0.1 to 1)\,μA/Φ0, a factor of 10 to 30 beyond current μMUX devices, matched to the detector current noise of (9 to 10)~pA/ Hz, which is independent of the absorber mass. With a total flux noise of 1.2\,μΦ0/ Hz, the readout degrades the baseline resolution by less than 2\% up to N mux=1000, negligible compared with the TES-limited resolution. These results are implemented in a single-tower design: 52 BGO crystals of 100~g each and one HEMT amplifier. The tower is the unit of a multi-tower array of several kilograms aimed at CEνNS and dark matter searches.

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