Analytical models for the pulse shape of a superconductor-ferromagnet tunnel junction thermoelectric microcalorimeter
arXiv:2206.02513 · doi:10.1007/s10909-022-02768-y
Abstract
The superconductor-ferromagnet thermoelectric detector (SFTED) is a novel ultrasensitive radiation detector based on the giant thermoelectric effect in superconductorferromagnet tunnel junctions. We demonstrate analytical models and solutions in the time domain for a SFTED operated as a microcalorimeter (pulse excitation), in the linear smallsignal limit. Based on these solutions, the signal current and temperature pulse response were studied for two different electrical circuit models, providing design conditions for stable and non-oscillatory response.
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Cited by in corpus (5)
- Superconductor-ferromagnet hybrids for non-reciprocal electronics and detectors
- A highly-sensitive broadband superconducting thermoelectric single-photon detector
- Microwave-assisted thermoelectricity in SIS' tunnel junctions
- Bipolar thermoelectrical SQUIPT (BTSQUIPT)
- Bipolar thermoelectricity in S/I/NS and S/I/SN superconducting tunnel junctions