Title :
Experimental demonstration of microfabricated phononic crystal resonators based on two-dimensional silicon plate
Author :
Nan Wang ; Tsai, Julius Minglin ; Soon, Bo Woon ; Dim-Lee Kwong ; Fu-Li Hsiao ; Soon, Bo Woon ; Palaniapan, Moorthi ; Chengkuo Lee
Author_Institution :
Inst. of Microelectron. A*STAR (Agency for Sci. Technol. & Res.), Singapore, Singapore
Abstract :
This paper shows the design, fabrication and characterization of a novel design micromechanical resonators with Bloch-mode resonance by creating defects on a two dimensional (2-D) silicon phononic crystal (PnC) slab made by etching a square array of cylindrical air holes in a 10μm thick free-standing silicon plate. Piezoelectric aluminum nitride (AIN) film is deployed as the inter-digital transducers (IDT) to transmit and detect acoustic waves, thus making the whole microfabrication process CMOS-compatible. We also fabricate a PnC structure which has a stopband of 140MHz <; f <;195MHz which agrees quite well with the simulation results. The characterized resonant frequency of microfabricated PnC resonators increases with central-hole radius (r´) and reaches its maximum value (163.54MHz) at r´=8μm, while Q factor reaches maximum (954) at r´=6μm.The Bloch-mode PnC resonators based on square lattice PnC structure show promising acoustic resonance characteristics with relative smaller PnC active area than other reported designs. Such performance is very promising for sensing applications.
Keywords :
III-V semiconductors; acoustic resonance; aluminium compounds; crystal resonators; elemental semiconductors; etching; interdigital transducers; microcavities; microfabrication; micromechanical resonators; photonic crystals; piezoelectric thin films; semiconductor thin films; silicon; wide band gap semiconductors; 2D silicon phononic crystal slab; 2D silicon plate; AlN; Bloch-mode phononic crystal resonators; Bloch-mode resonance; Si; acoustic resonance characteristics; acoustic waves; central-hole radius; cylindrical air holes; etching; free-standing silicon plate; frequency 163.54 MHz; interdigital transducers; microfabricated phononic crystal resonators; microfabrication process; micromechanical resonators; phononic crystal active area; piezoelectric aluminum nitride film; resonant frequency; sensing applications; size 6 mum; size 8 mum; square array; square lattice phononic crystal structure; stopband; Acoustic waves; Crystals; Photonic band gap; Q factor; Silicon; Slabs; Bloch-mode; CMOS compatible; phononic crystal; resonator;
Conference_Titel :
Defense Science Research Conference and Expo (DSR), 2011
Conference_Location :
Singapore
Print_ISBN :
978-1-4244-9276-3
DOI :
10.1109/DSR.2011.6026876