Title :
Cryogenic Broadband Ultra-Low-Noise MMIC LNAs for Radio Astronomy Applications
Author :
Schleeh, Joel ; Wadefalk, N. ; Nilsson, P.A. ; Starski, J.P. ; Grahn, Jan
Author_Institution :
Dept. of Microtechnol. & Nanosci. (MC2), Chalmers Univ. of Technol., Goteborg, Sweden
Abstract :
0.5-13- and 24-40-GHz broadband cryogenic monolithic-microwave integrated-circuit low-noise amplifiers (LNAs) have been designed and fabricated using a 130-nm InP HEMT process. Packaged LNAs have been measured at both 300 and 15 K. At 300 K, the measured minimum noise temperature of the 0.5-13-GHz LNA was 48 K at 7 GHz with a gain between 34-40 dB. At 15 K, the measured minimum noise temperature was 3 K at 7 GHz and below 7 K within the entire 0.5-13-GHz band with a gain between 38-44 dB. The 24-40-GHz LNA exhibited a lowest noise temperature of 110 K and an average of 125 K with a gain of more than 27.5 dB at 300 K. When cooled down to 15 K, the noise temperature dropped to a minimum of 10 K and average of 13.2 K with a gain of 28 dB. The results are of large interest for radio astronomy applications where large bandwidth and low noise figure in the receivers are key figures in the system design.
Keywords :
HEMT integrated circuits; III-V semiconductors; MMIC amplifiers; cryogenics; field effect MMIC; indium compounds; low noise amplifiers; radioastronomy; wideband amplifiers; HEMT process; InP; cryogenic broadband ultra-low-noise MMIC LNA; frequency 0.5 GHz to 13 GHz; frequency 24 GHz to 40 GHz; gain 28 dB; gain 38 dB to 44 dB; low noise amplifiers; monolithic microwave integrated circuit; noise temperature; radio astronomy; size 130 nm; temperature 10 K; temperature 110 K; temperature 125 K; temperature 13.2 K; temperature 15 K; temperature 3 K; temperature 300 K; temperature 48 K; Extraterrestrial measurements; HEMTs; Indium phosphide; MMICs; Noise; Noise measurement; Temperature measurement; Broadband amplifiers; InP HEMT; cryogenic; low-noise amplifier (LNA); monolithic microwave integrated circuit (MMIC);
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2012.2235856