Title :
Tunable Bandpass Filter Based on Partially Magnetized Ferrite LTCC With Embedded Windings for SoP Applications
Author :
Arabi, Eyad ; Ghaffar, Farhan A. ; Shamim, A.
Author_Institution :
Div. of Comput., King Abdullah Univ. of Sci. & Technol. (KAUST), Thuwal, Saudi Arabia
Abstract :
Tunable filters that are based on ferrite materials often require large and bulky electromagnets. In this work, we present a tunable filter in the Ku-band, which is realized in multilayer ferrite LTCC substrate with embedded bias windings, thus negating the need of a large electromagnet. Also, because of the embedded windings, the bias fields are not lost at the air-substrate interface and therefore the field and current requirements are reduced by an order of magnitude as compared to the previously reported filters. A simulation strategy that uses full permeability tensor with arbitrarily directed magnetic fields has been used to model the filter on a partially magnetized ferrite substrate. Special attention has also been paid to approximate the non-uniform magneto-static fields produced by the embedded windings. The complete design is implemented in 10 layers of ferrite LTCC, making it the first magnetically tunable filter with embedded windings and extremely small size [(5 × 5 × 1.1) mm3]. The filter demonstrates a measured tunability of 4% and an insertion loss of 2.3 dB. With the small form factor, embedded windings, and low bias requirements, the design is highly suitable for compact and tunable SoP applications.
Keywords :
band-pass filters; ceramic packaging; ferrites; magnetic permeability; magnetostatics; system-on-package; tensors; windings; Ku-band; SoP application; air-substrate interface; arbitrarily directed magnetic field; electromagnet; embedded bias winding; loss 2.3 dB; multilayer ferrite LTCC substrate; nonuniform magnetostatic field; partially magnetized ferrite LTCC material; permeability tensor; system on package; tunable bandpass filter; Ferrites; Magnetic resonance; Magnetic separation; Magnetostatics; Permeability; Substrates; Windings; Bandpass filter (BPF); ferrite; low temperature co-fired ceramics (LTCC); system on package (SoP);
Journal_Title :
Microwave and Wireless Components Letters, IEEE
DOI :
10.1109/LMWC.2014.2365748