Multichannel read-out for arrays of metallic magnetic calorimeters
F. Mantegazzini (1), S. Allgeier (1), A. Barth (1), C. Enss (1), A., Ferring-Siebert (1), A. Fleischmann (1), L. Gastaldo (1), R. Hammann (1), D., Hengstler (1), S. Kempf (1, 2), D. Richter (1), D. Schulz (1), D. Unger, (1), C. Velte (1), M. Wegner (1

TL;DR
This paper introduces a standardized 32-channel parallel read-out system for metallic magnetic calorimeter arrays, enabling flexible, scalable, and upgradeable detection in various high-precision physics experiments at millikelvin temperatures.
Contribution
The paper presents a new modular 32-channel read-out system for MMC arrays, adaptable to different applications and compatible with existing detector designs.
Findings
Successfully implemented for ECHo-1k, maXs, and MOCCA systems.
Allows detector module upgrades without changing the read-out system.
Provides flexible and reliable operation for various high-energy physics experiments.
Abstract
Metallic magnetic micro-calorimeters (MMCs) operated at millikelvin temperature offer the possibility to achieve eV-scale energy resolution with high stopping power for X-rays and massive particles in an energy range up to several tens of keV. This motivates their use in a wide range of applications in fields as particle physics, atomic and molecular physics. Present detector systems consist of MMC arrays read out by 32 two-stage SQUID read-out channels. In contrast to the design of the detector array and consequently the design of the front-end SQUIDs, which need to be optimised for the physics case and the particles to be detected in a given experiment, the read-out chain can be standardised. We present our new standardised 32-channel parallel read-out for the operation of MMC arrays to be operated in a dilution refrigerator. The read-out system consists of a detector module, whose…
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