High-Power Radiation at 1 THz in Silicon: A Fully Scalable Array Using a Multi-Functional Radiating Mesh Structure
We introduce a highly scalable architecture of coherent harmonic oscillator array for high-power and narrow-beamwidth radiation in the mid-terahertz (THz) band. The array consists of horizontal and vertical slotlines (i.e., slot mesh) located at the boundaries between oscillator elements. Through su...
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Veröffentlicht in: | IEEE journal of solid-state circuits 2018-05, Vol.53 (5), p.1313-1327 |
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Sprache: | eng |
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Zusammenfassung: | We introduce a highly scalable architecture of coherent harmonic oscillator array for high-power and narrow-beamwidth radiation in the mid-terahertz (THz) band. The array consists of horizontal and vertical slotlines (i.e., slot mesh) located at the boundaries between oscillator elements. Through such a structure, the following operations are achieved simultaneously: 1) maximum oscillation power at fundamental frequency f 0 ; 2) precise synchronization of the oscillation phase among elements; 3) cancellation of the radiation at f 0 , 2 f 0 , and 3 f 0 ; and 4) efficient radiation and power combining at 4 f0. The resultant compact design fits into the optimal radiator pitch of λ 4 f 0 /2 (half wavelength) for the suppression of sidelobes, hence enabling implementation of high-density THz arrays. In particular, an array prototype of 42 coherent radiators (with 91 resonant antennas) at 1 THz is presented using the IHP S13G2 130-nm SiGe process. The chip occupies only 1-mm 2 area and consumes 1.1 W of dc power. The measured total radiated power and the effective isotropically radiated power are 80 μW and 13 dBm, respectively. |
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ISSN: | 0018-9200 1558-173X |
DOI: | 10.1109/JSSC.2017.2786682 |