The next-generation of cryogenic neutrinoless double-betadecay experiments require increasingly fast readout in order toimprove background discrimination. These experiments, operated as cryogenic calorimeters at ∼ 10 mK, are usually read out by high-impedance neutron transmutation doped (NTD) thermistors, which provide good energy resolution, but are limited by ∼ 1 ms response times. Superconducting detectors, such as transition-edge sensors (TESs) with a time resolution of ∼ 100 μs, offer superior timing performance over NTD semiconductor bolometers. To make this technology viable for an application to a thousand or more channels, multiplexed readout is necessary in order to minimize the thermal load and radioactive contamination induced by the readout. Frequency-domain multiplexing readout (fMUX) for TESs, previously developed at Berkeley Lab and McGill University, is currently in use for mm-wave telescopes with detector sampling rates in the order of 100 Hz. We demonstrate a new readout system, based on theMcGill/Berkeley digital fMux readout, to satisfy the higher bandwidth and noise requirements of the next generation of TES-instrumented cryogenic calorimeters. Each multiplexing readout module comprises 10 superconducting resonators in the 1–5 MHz range and a DC superconducting quantum interference device(DC-SQUID), interfaced to high-speed field programmable gate array(FPGA)-based electronics for digital signal processing and low-latency SQUID feedback. The new readout samples detectors at 156 kHz, three orders of magnitude faster than its cosmology-oriented predecessor, and demonstrates a stable feedback bandwidth of 3 kHz in a real TES-based system.
High-bandwidth frequency domain multiplexed readout of transition-edge sensors for neutrinoless double beta decay searches / Adamič, M., Beretta, M., Camilleri, J., Capelli, C., Dobbs, M.A., Elleflot, T., Fujikawa, B.K., Kolomensky, Yu.G., Mayer, D., Montgomery, J., Novosad, V., Sindhwad, A.M., Singh, V., Smecher, G., Suzuki, A., Welliver, B.. - In: JOURNAL OF INSTRUMENTATION. - ISSN 1748-0221. - 21:6(2026), pp. 1-16. [10.1088/1748-0221/21/06/P06007]
High-bandwidth frequency domain multiplexed readout of transition-edge sensors for neutrinoless double beta decay searches
Capelli, C.
;
2026
Abstract
The next-generation of cryogenic neutrinoless double-betadecay experiments require increasingly fast readout in order toimprove background discrimination. These experiments, operated as cryogenic calorimeters at ∼ 10 mK, are usually read out by high-impedance neutron transmutation doped (NTD) thermistors, which provide good energy resolution, but are limited by ∼ 1 ms response times. Superconducting detectors, such as transition-edge sensors (TESs) with a time resolution of ∼ 100 μs, offer superior timing performance over NTD semiconductor bolometers. To make this technology viable for an application to a thousand or more channels, multiplexed readout is necessary in order to minimize the thermal load and radioactive contamination induced by the readout. Frequency-domain multiplexing readout (fMUX) for TESs, previously developed at Berkeley Lab and McGill University, is currently in use for mm-wave telescopes with detector sampling rates in the order of 100 Hz. We demonstrate a new readout system, based on theMcGill/Berkeley digital fMux readout, to satisfy the higher bandwidth and noise requirements of the next generation of TES-instrumented cryogenic calorimeters. Each multiplexing readout module comprises 10 superconducting resonators in the 1–5 MHz range and a DC superconducting quantum interference device(DC-SQUID), interfaced to high-speed field programmable gate array(FPGA)-based electronics for digital signal processing and low-latency SQUID feedback. The new readout samples detectors at 156 kHz, three orders of magnitude faster than its cosmology-oriented predecessor, and demonstrates a stable feedback bandwidth of 3 kHz in a real TES-based system.| File | Dimensione | Formato | |
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