Title :
Analysis of a 170-GHz frequency doubler with an array of planar diodes
Author :
Tuovinen, Jussi ; Erickson, Neal R.
Author_Institution :
Radio Lab., Helsinki Univ. of Technol., Espoo, Finland
fDate :
4/1/1995 12:00:00 AM
Abstract :
Analysis of a planar diode multiplier from 85-170 GHz is described. The doubler uses a waveguide mount with two series pairs of diodes in a balanced structure. Because of the difficulties in conventional scale model measurements, numerical electromagnetic simulation based on the finite element method was chosen for the analysis, using a commercial program. To optimize the diode design, the de-embedded diode terminal impedance was studied, as well as the power balance between the diodes. The analysis showed that the matching of the diode impedance to that of the waveguide is quite sensitive to the diode substrate thickness. Thicknesses from 25-100 μm in GaAs were studied as well as 100-μm-thick quartz. The accuracy of the theoretical analysis was verified by careful measurements using a slotted line to determine the diode terminal impedance under large signal pump, for frequencies between 80 and 90 GHz. Good agreement between the measured and simulated diode terminal impedance was observed, although full agreement requires the addition of an empirical loss term. Several options are considered for the source of this loss
Keywords :
III-V semiconductors; MIMIC; MMIC frequency convertors; finite element analysis; frequency multipliers; gallium arsenide; millimetre wave frequency convertors; slot line components; 25 to 100 micron; 85 to 170 GHz; GaAs; balanced structure; de-embedded diode terminal impedance; diode terminal impedance; empirical loss term; finite element method; frequency doubler; numerical electromagnetic simulation; planar diode array; planar diode multiplier; power balance; slotted line; waveguide mount; Analytical models; Diodes; Electromagnetic measurements; Electromagnetic modeling; Electromagnetic waveguides; Finite element methods; Frequency; Impedance measurement; Numerical models; Numerical simulation;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on