Title :
Modeling Inductances of Wiring for a TES Array Read by FDM
Author :
Yan, Xiaodong ; Bruijn, M.P. ; van Weers, H.J. ; Hijmering, R.A. ; van der Kuur, Jan ; Gao, J.R.
Author_Institution :
SRON Netherlands Inst. for Space Res., Utrecht, Netherlands
Abstract :
Large Transition Edge Sensor (TES) arrays, required for the SAFARI imaging spectrometer on a planned SPICA space telescope, will be read out by Frequency Division Multiplexing (FDM). All the pixels are connected with densely packed and equally long superconducting wires. Inductive coupling between wire pairs forms critical performance issues. Mutual inductance is one of the origins of electronic crosstalk among pixels. We find that available literature is not complete in providing suitable calculation methods for the required modelling. In this paper, we describe a relatively fast inductance calculation method for long, arbitrary wires, which can be useful for analyzing crosstalk between pixels and can also be important for guiding wiring layout design. The mutual inductance between two wire loops is calculated using Neumann´s formula by a double summation of analytical expressions implemented in Python. Self-inductance for a multi-segment wire can be calculated by the summation of self-inductance of each wire segment and the mutual inductance between all segments. Combining this method with other modelling techniques, we have simulated the inductances of an entire 160 pixel FDM test setup.
Keywords :
crosstalk; frequency division multiplexing; inductance; infrared detectors; infrared spectrometers; spectrometer accessories; wiring; Neumann´s formula; Python; SAFARI imaging spectrometer; analytical expressions; arbitrary wires; densely packed superconducting wires; electronic crosstalk; frequency division multiplexing; inductance calculation method; inductive coupling; large transition edge sensor arrays; multisegment wire; planned SPICA space telescope; self-inductance; wire loops; wire pairs; wiring inductances; wiring layout design; Arrays; Detectors; Equations; Frequency division multiplexing; Inductance; Mathematical model; Wires; Far infra-red spectrometer; Neumann´s formula; TES transition edge sensor; inductance calculation;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2014.2363625