Frequency Shift Algorithm: Design of a Baseband Phase Locked Loop for Frequency-Domain Multiplexing Readout of X-ray Transition-Edge Sensor Microcalorimeters
Paul van der Hulst, Jan van der Kuur, Ad Nieuwenhuizen, Davide, Vaccaro, Hiroki Akamatsu, Patrick van Winden, Bert-Joost van Leeuwen, and, Jan-Willem den Herder

TL;DR
This paper introduces a baseband phase-locked loop algorithm for frequency domain multiplexing readout of TES microcalorimeters, enabling high-precision frequency control to preserve energy resolution in large arrays.
Contribution
It presents two novel baseband PLL controllers, a simple PI and a complex impedance estimator, for compensating LC resonance deviations in TES multiplexing systems.
Findings
Controllers operate effectively in baseband.
They enable off-resonance TES operation without losing energy resolution.
Experimental results confirm preservation of single pixel energy resolution.
Abstract
The Transition-Edge Sensor (TES) is an extremely sensitive device which is used to measure the energy of individual X-ray photons. For astronomical spectrometry applications, SRON develops a Frequency Domain Multiplexing (FDM) read-out system for kilopixel arrays of such TESs. Each TES is voltage biased at a specific frequency in the range 1 to 5 MHz. Isolation between the individual pixels is obtained through very narrow-band (high-Q) lithographic LC resonators. To prevent energy resolution degradation due to intermodulation line noise, the bias frequencies are distributed on a regular grid. The requirements on the accuracy of the LC resonance frequency are very high. The deviation of the resonance frequencies due to production tolerances is significant with respect to the bandwidth, and a controller is necessary to compensate for the LC series impedance. We present two such…
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