DocumentCode :
2758664
Title :
Direct near-field antenna testing via non-perturbing photonic probe
Author :
Rendina, L. ; Cocorullo, G. ; Corte, F. G Della ; Iodice, M. ; Massa, R. ; Panariello, G.
Author_Institution :
Res. Inst. for Electromagn. & Electr. Components, Nat. Res. Council, Naples, Italy
Volume :
2
fYear :
2000
fDate :
2000
Firstpage :
531
Abstract :
Discusses a new photonic sensor for the microwave and millimeter-wave range. The probe is a silicon optical microsensor made of an interferometric Fabry-Perot microcavity, directly connected to a fiber optic for remote interrogation. When exposed to an EM field, the power dissipated in the semiconductor-sensing element induces the heating, and in turn, a change of the refractive index of the silicon by thermo-optic effect. This variation induces a modulation of the probing light intensity reflected by the interferometric cavity. The characterization of a nonoptimized prototype in the frequency range 2-18 GHz was carried out, and resolutions going well beyond those characterizing other nonperturbing sensors operating at the same frequency range were measured. A theoretical analysis, giving results in good agreement with experiments, was also carried out, showing the sensor capability to detect signals up to 100 GHz and the possibility of significantly increasing the sensitivity in optimized designs. In the communication, new preliminary results concerning the application of the proposed class of probes to indoor near-field antenna characterization are presented. In particular, the results we report have been carried out with a prototype realized starting from a 280-μm-thick Si wafer
Keywords :
Fabry-Perot interferometers; Fabry-Perot resonators; antenna testing; elemental semiconductors; fibre optic sensors; heating; micro-optics; microsensors; microwave measurement; microwave photonics; millimetre wave antenna arrays; optical fibre couplers; probes; refractive index; remote sensing; silicon; slot antenna arrays; thermo-optical effects; 100 GHz; 2 to 18 GHz; 280 mum; EM field; Si; Si optical microsensor; Si wafer; direct near-field antenna testing; fiber optics; frequency range; heating; indoor near-field antenna characterization; interferometric Fabry-Perot microcavity; interferometric cavity; microwave range; millimeter-wave range; modulation; nonoptimized prototype; nonperturbing photonic probe; nonperturbing sensors; optimized designs; photonic sensor; power dissipation; preliminary results; probes; probing light intensity; prototype; refractive index; remote interrogation; resolutions; semiconductor-sensing element; sensitivity; sensor capability; thermo-optic effect; Electromagnetic heating; Frequency; Microwave sensors; Optical interferometry; Optoelectronic and photonic sensors; Probes; Prototypes; Sensor phenomena and characterization; Silicon; Testing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Lasers and Electro-Optics Society 2000 Annual Meeting. LEOS 2000. 13th Annual Meeting. IEEE
Conference_Location :
Rio Grande
ISSN :
1092-8081
Print_ISBN :
0-7803-5947-X
Type :
conf
DOI :
10.1109/LEOS.2000.893950
Filename :
893950
Link To Document :
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