Title :
A broad-band THz radiation detector using a Nb-based superconducting tunnel junction
Author :
Otani, C. ; Taino, T. ; Nakano, R. ; Hoshino, K. ; Shibuya, T. ; Myoren, H. ; Ariyoshi, S. ; Sato, H. ; Shimizu, H.M. ; Takada, S. ; Kawase, K.
Author_Institution :
RIKEN, Saitama, Japan
fDate :
6/1/2005 12:00:00 AM
Abstract :
We have proposed and been developing a new broad-band terahertz (THz) radiation detector using a Nb-based superconducting tunnel junction (STJ). The STJ´s were fabricated on LiNbO3 and LiTaO3 mono-crystal substrates. We radiated monochromatic THz pulses in the range 1-2 THz with the pulse repetition rate of 49 Hz, and successfully detected the corresponding periodic signals via a charge-sensitive preamplifier. The current signal obtained by the derivative of the output signal gave the time response of about 15-20 microseconds. The frequency response was compared with that of a conventional pyro-electric sensor. We found their frequency response showed the similar shape in frequency, demonstrating the flat response of the STJ detector in 1-2 THz. These results show that the detector can be used as a broad-band THz and far-infrared radiation detector above the frequency corresponding to the energy gap of the superconductor used for the base electrode.
Keywords :
frequency response; niobium; submillimetre wave detectors; superconducting junction devices; 1 to 2 THz; 49 Hz; Nb; Nb-based superconducting tunnel junction; STJ detector; broad-band THz radiation detector; broad-band terahertz radiation detector; charge-sensitive preamplifier; far-infrared radiation detector; frequency response; pyroelectric sensor; Biological materials; Biomedical materials; Fabrication; Frequency response; Insulation; Josephson junctions; Niobium; Radiation detectors; Superconducting epitaxial layers; Temperature sensors; Radiation detectors; superconducting tunnel junctions; terahertz;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2005.849950