Title :
An X-band self-mixing oscillator antenna for transceiver and spatial power-combining applications
Author :
Montiel, Claudio M. ; Fan, Lu ; Kai Chang
Author_Institution :
Dept. of Electr. Eng., Texas A&M Univ., College Station, TX, USA
fDate :
10/1/1998 12:00:00 AM
Abstract :
The general theory for oscillator and mixer design is applied to develop an X-band self-mixing oscillator antenna. The antenna uses a Gunn diode as the active device that provides the oscillations and self-mixing operations. The circuit uses a slotline ring resonator for frequency stabilization and can be modified to include a varactor diode for wide-band frequency tuning. The circuit performance is compared with theoretical results derived from simple transmission-line models. The radiation patterns of the self-mixing oscillator antenna are also compared with those measured from a similarly configured passive antenna. Since the radiated power also serves as the local oscillator (LO) frequency for the self-mixing operation, the circuit is useful as a half-duplex transceiver. When the self-mixing operation is not required, a single oscillator antenna can be used as a transmitter and several units can be assembled in a planar array for spatial powercombining applications
Keywords :
Gunn oscillators; active antenna arrays; antenna radiation patterns; frequency stability; microwave antenna arrays; power combiners; slot line components; tuning; varactors; Gunn diode; X-band; active device; frequency stabilization; half-duplex transceiver; planar array; radiation patterns; self-mixing oscillator antenna; slotline ring resonator; spatial power-combining applications; transmission-line models; varactor diode; wide-band frequency tuning; Antenna theory; Circuit optimization; Diodes; Gunn devices; Optical ring resonators; Oscillators; Resonant frequency; Slotline; Transceivers; Varactors;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on