Title :
An unbiased integrated microstrip circulator based on magnetic nanowired substrate
Author :
Saib, Aimad ; Darques, Michaël ; Piraux, Luc ; Vanhoenacker-Janvier, Danielle ; Huynen, Isabelle
Author_Institution :
Microwave Lab., Univ. Catholique de Louvain, Louvain-la-Neuve, Belgium
fDate :
6/1/2005 12:00:00 AM
Abstract :
A very compact planar fully integrated circulator operating at millimeter wavelength has been designed using a magnetic substrate combining a polymer membrane with an array of ferromagnetic nanowires. The original feature of this substrate, called magnetic nanowired substrate (MNWS), relies on the fact that the circulation effect is obtained without requiring any biasing dc magnetic field. This leads to a significant reduction of device dimensions since no magnetic field source is needed, and a realistic ability for integration with monolithic microwave integrated circuits. The circulator design is performed by an efficient analytical model including a self design of the impedance matching network. This model also allows a physical understanding of the circulation mechanism through the access to the electromagnetic field patterns inside the circulator substrate. Based on the excellent agreement between the theoretical and experimental results, the model is used to predict the improvement of circulator performances resulting from a reduction of dielectric and conductor losses. Insertion losses lower than 2 dB with an isolation higher than 45 dB are expected for MNWS circulators with a low-loss substrate and thick metallic layers.
Keywords :
impedance matching; magnetic materials; microstrip lines; millimetre wave circulators; nanowires; MNWS circulators; circulation mechanism; circulator design; circulator performance; circulator substrate; conductor loss reduction; dc magnetic field; dielectric loss reduction; electromagnetic field pattern; ferromagnetic nanowires; impedance matching network; insertion loss; integrated microstrip circulator; low-loss substrate; magnetic field source; magnetic nanowired substrate; metallic layers; millimeter wavelength; monolithic microwave integrated circuits; polymer membrane; unbiased microstrip circulator; Biomembranes; Dielectric losses; Dielectric substrates; MMICs; Magnetic fields; Microstrip; Microwave devices; Microwave integrated circuits; Nanowires; Polymers; Circulator; ferromagnetic nanowires; integrated; microstrip; nonreciprocal;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2005.848818