Title :
Micromachined Thick Mesh Filters for Millimeter-Wave and Terahertz Applications
Author :
Yi Wang ; Bin Yang ; Yingtao Tian ; Donnan, Robert S. ; Lancaster, Michael J.
Author_Institution :
Dept. of Electron. Electr. Comput. Eng., Univ. of Greenwich, Chatham, UK
Abstract :
This paper presents several freestanding bandpass mesh filters fabricated using an SU-8-based micromachining technique. The important geometric feature of the filters, which SU8 is able to increase, is the thickness of the cross-shaped micromachined slots. This is five times its width. This thickness offers an extra degree of control over the resonance characteristics. The large thickness not only strengthens the structures, but also enhances the resonance quality factor ( Q-factor). A 0.3-mm-thick, single-layer, mesh filter resonant at 300 GHz has been designed and fabricated and its performance verified. The measured Q-factor is 16.3 and the insertion loss is 0.98 dB. Two multi-layer filter structures have also been demonstrated. The first one is a stacked structure of two single mesh filters producing a double thickness, which achieved a further increased Q-factor of 27. This is over six times higher than a thin mesh filter. The second multilayer filter is an electromagnetically coupled structure forming a two-pole filter. The coupling characteristics are discussed based on experimental and simulation results. These thick mesh filters can potentially be used for sensing and material characterization at millimeter-wave and terahertz frequencies.
Keywords :
band-pass filters; electromagnetic coupling; micromachining; micromechanical resonators; millimetre wave filters; network synthesis; resonator filters; submillimetre wave filters; Q-factor; SU-8-based micromachining technique; cross-shaped micromachined slot; electromagnetic coupling characteristics; freestanding bandpass mesh filter; frequency 300 GHz; loss 0.98 dB; micromachined thick mesh filter; millimeter-wave application; resonance quality factor; second multilayer filter structure; single-layer mesh filter; terahertz application; two-pole filter; Bandwidth; Couplings; Educational institutions; Materials; Millimeter wave technology; Resonant frequency; Sensitivity; Filters; frequency-selective surfaces (FSSs); micro machining; millimeter-wave (mm-wave) devices;
Journal_Title :
Terahertz Science and Technology, IEEE Transactions on
DOI :
10.1109/TTHZ.2013.2296564