Title :
A highly linear single balanced mixer based on heterojunction interband tunneling diode
Author :
Cidronali, Alessandro ; Collodi, Giovanni ; Deshpande, Mandar Ramesh ; El-Zein, Nada ; Nair, Vijay ; Manes, Gianfranco ; Goronkin, Herb
Author_Institution :
Dept. of Electron. & Telecommun., Florence Univ., Italy
fDate :
12/1/2001 12:00:00 AM
Abstract :
In this paper, a compact and highly linear monolithic-microwave integrated circuit (MMIC) single balanced mixer based on heterojunction interband tunnel diode (HITD) technology working at 1.8 GHz is described. The prototype consists of a pair of HITDs biased at 0 V and a lumped-element directional coupler with arbitrary impedance terminations. The HITDs are in the InGaAs/InAlAs material system lattice matched to InP. The relevant feature of the mixer is the linearity due to the quasi-square-law dc current-voltage (IV) characteristics exhibited by the device around zero voltage. A qualitative treatment of the third-order intermodulation product and the conversion loss as a function of the HITDs IV characteristic and the embedding impedance is provided. The design techniques along with a detailed experimental validation are also provided. The prototype working in down-conversion mode, exhibited an third-order intercept point power level of +17.5 dBm, a conversion loss of 11 dB and a 1-dB compression point of +7 dBm at the operative frequency of 1.8 GHz with a +5-dBm local-oscillator drive level
Keywords :
MMIC mixers; UHF mixers; intermodulation distortion; millimetre wave diodes; millimetre wave directional couplers; tunnel diodes; 1.8 GHz; 11 dB; ISM applications; InGaAs-InAlAs; MMIC mixer; arbitrary impedance terminations; conversion loss; design techniques; down-conversion mode; heterojunction interband tunnel diode; highly linear single balanced mixer; lumped-element directional coupler; quantum-well device; quasi-square-law DC I-V characteristics; third-order intermodulation product; Diodes; Directional couplers; Heterojunctions; Impedance; Indium compounds; Indium gallium arsenide; Integrated circuit technology; MMICs; Monolithic integrated circuits; Prototypes;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on