Title :
X-Ray Response of a Transition Edge Sensor Microcalorimeter With a Mushroom-Shaped Absorber
Author :
Ezaki, S. ; Maehata, K. ; Iyomoto, N. ; Maeda, M. ; Hara, T. ; Mitsuda, K. ; Tanaka, K.
Author_Institution :
Dept. of Appl. Quantum Phys. & Nucl. Eng., Kyushu Univ., Fukuoka, Japan
Abstract :
Superconducting transition edge sensor (TES) microcalorimeters are excellent energy-resolving devices for X-ray detection. We fabricated two types of TES microcalorimeter using different mushroom-shaped absorber thicknesses (0.5 and 5μm). Both types of TES microcalorimeter were irradiated with X-ray photons emitted by an 55Fe source. X-ray detection signal pulses were collected to examine the effects of absorber thickness on performance. The values of the thermal conductance G were obtained by analyzing the current-voltage characteristics of the TES. By comparing the experimental G for both types of TES microcalorimeter, the absorber thickness was found to not affect the thermal properties of either type of TES microcalorimeter. The sensitivity α values for both TES microcalorimeters were obtained by analyzing the decay time constant of the X-ray detection signal pulses. The experimental ratio of the full-width at half-maximum value for the energy peaks of the Mn-Kα X-ray between both types of TES microcalorimeter was similar to theoretical estimations based on the different absorber thicknesses.
Keywords :
X-ray detection; calorimeters; superconducting particle detectors; thermal conductivity; TES microcalorimeter; X-ray detection; X-ray response; absorber thickness; current-voltage characteristics; mushroom-shaped absorber; superconducting transition edge sensor; thermal conductance; transition edge sensor microcalorimeter; Energy resolution; Gold; Heat sinks; Photonics; Resistance; Temperature dependence; X-ray detection; Microcalorimeter; Superconducting transition edge sensor; X-ray absorber; microcalorimeter; superconducting devices; superconducting transition edge sensor (TES);
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2014.2377113