Title :
A novel transition from grounded coplanar waveguide to substrate inte grated waveguide for 60 GHz Radio-over-Fiber photonic transmitters
Author :
Flammia, Ivan ; Khani, Besher ; Stohr, Andreas
Author_Institution :
Center for Semicond. Technol. & Optoelectron., Univ. of Duisburg-Essen, Duisburg, Germany
Abstract :
We present a novel transition from grounded coplanar waveguide (GCPW) to substrate integrated waveguide (SIW), designed on a ROGERS 5880 laminate for 60 GHz Radio-over-Fiber (RoF) photonic transmitters. The transition serves as connection between a 60 GHz photodiode (PD) chip and a suitable SIW antenna. In contrast to previous designs, our approach makes use of a quarter-wave coupled-lines (CL) section to transfer the signal carried by the GCPW to the SIW. This technique, creating a DC-block between the GCPW signal track and the ground layers, allows for correctly biasing the PD. In order to reduce the propagation of parasitic modes as well as the risk of interferences, the transition is fully enclosed by a fence of via holes. Simulations show that in the whole 57-64 GHz band, the return loss (RL) is higher than 17 dB, while the insertion loss (IL) is ~ 0.4 dB. To prevent the loss of RF power through the DC path, a planar RF-choke (RL > 22 dB, IL <; 0.4 dB and RF-to-DC isolation (IS) higher than 28 dB) is additionally integrated.
Keywords :
coplanar waveguides; millimetre wave antennas; optical transmitters; photodiodes; radio-over-fibre; substrate integrated waveguides; waveguide antennas; CL section; DC path; GCPW signal track; IL; IS; PD chip; RF-to-DC isolation; RL; ROGERS 5880; RoF photonic transmitters; SIW antenna; frequency 57 GHz to 64 GHz; ground layers; grounded coplanar waveguide; insertion loss; parasitic modes; photodiode chip; planar RF-choke; quarter-wave coupled-lines section; radio-over-fiber photonic transmitters; return loss; substrate integrated waveguide; Coplanar waveguides; Microwave circuits; Microwave photonics; Optical waveguides; Substrates; Waveguide transitions; 60 GHz; Radio-over-Fiber; SIW; V band; grounded coplanar waveguide; photonic transmitter; substrate integrated waveguide; transition;
Conference_Titel :
Microwave Techniques (COMITE), 2013l Conference on
Conference_Location :
Pardubice
Print_ISBN :
978-1-4673-5512-4
DOI :
10.1109/COMITE.2013.6545046