Title :
Compact DC-60-GHz HJFET MMIC switches using ohmic electrode-sharing technology
Author :
Mizutani, Hiroshi ; Funabashi, Masahiro ; Kuzuhara, Masaaki ; Takayama, Yoichiro
Author_Institution :
C&C LSI Dev. Div., NEC Corp., Kawasaki, Japan
fDate :
11/1/1998 12:00:00 AM
Abstract :
Compact DC-60-GHz heterojunction field-effect transistor (HJFET) monolithic-microwave integrated-circuit (MMIC) switches have been demonstrated for millimeter-wave communications and radar systems. To reduce the MMIC chip size, a novel ohmic electrode-sharing technology (OEST) has been developed for MMIC switches with series-shunt FET configuration. Four FET´s of the series-shunt single-pole double-throw (SPDT) MMIC switch were integrated into an area of approximately 0.018 mm2. The developed MMIC switches have a high power-handling capability with low insertion loss (IL) and high isolation (Iso) at millimeter-wave frequencies. From DC to 60 GHz, the single-pole single-throw (SPST) MMIC switch achieved the IL and Iso of better than 1.64 and 20.6 dB, respectively. At 40 GHz, the IL increases by 1 dB at the input power of 21 dBm. A novel large-signal FET model for the switch circuit is presented. The simulated power-transfer performance shows the excellent agreement with the measured one. The developed MMIC switches will contribute to the low-cost and high-performance millimeter-wave communications and radar systems
Keywords :
JFET integrated circuits; field effect MIMIC; field effect transistor switches; integrated circuit design; integrated circuit modelling; microwave switches; semiconductor device models; 0 to 60 GHz; 1.64 dB; EHF; MM-wave switch; SPDT MMIC switch; SPST MMIC switch; compact HJFET MIMIC switches; heterojunction field-effect transistor; high power-handling capability; large-signal FET model; low insertion loss; millimeter-wave communications; monolithic MM-wave integrated-circuit; ohmic electrode-sharing technology; power-transfer performance; radar systems; series-shunt FET configuration; single-pole double-throw switch; single-pole single-throw switch; Communication switching; FETs; Field effect MMICs; Heterojunctions; Insertion loss; Millimeter wave communication; Millimeter wave integrated circuits; Millimeter wave technology; Radar; Switches;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on