Title :
The Micronium—A Musical MEMS Instrument
Author :
Engelen, Johan B C ; De Boer, Hylco ; Beekman, Jethro G. ; Fortgens, Laurens C. ; De Graaf, Derk B. ; Vocke, Sander ; Abelmann, Leon
Author_Institution :
Transducers Sci. & Technol. Group, Univ. of Twente, Enschede, Netherlands
fDate :
4/1/2012 12:00:00 AM
Abstract :
The Micronium is a musical instrument fabricated from silicon using microelectromechanical system (MEMS) technology. It is-to the best of our knowledge-the first musical micro-instrument fabricated using MEMS technology, where the actual sound is generated by mechanical microstructures. The Micronium consists of mass-spring systems that are designed to resonate at audible frequencies. Their displacement is measured by comb drives and is used as the audio signal to drive a loudspeaker. The instrument´s sounds are pure sine waves. An extensive set of measurements of individual resonators is presented and discussed. Quality factor measurements at various ambient pressures show that an ambient pressure of 1 mbar results in a note duration of 1 s. The realized frequency deviates considerably from the designed resonator frequency. Measurement results of many resonators are shown to obtain understanding of this deviation. Initial experiments with electrostatic tuning using variable-gap comb drives show a tuning ratio of 5% maximum, depending on the resonator frequency. An audio recording of the instrument is included as a supplementary MP3 file.
Keywords :
Q-factor; audio recording; audio signal processing; displacement measurement; drives; elemental semiconductors; micromechanical resonators; musical instruments; silicon; MEMS technology; MP3 file; Si; ambient pressure; audible frequency; audio recording; audio signal; displacement measurement; electrostatic tuning; loudspeaker; mass-spring system; mechanical microstructure; microelectromechanical system; micronium; musical MEMS instrument; musical microinstrument; pressure 1 mbar; quality factor measurement; resonator frequency; sine wave; time 1 s; tuning ratio; variable-gap comb drives; Capacitance; Frequency measurement; Instruments; Micromechanical devices; Resonant frequency; Semiconductor device measurement; Springs; Capacitive displacement sensor; musical instrument; tunable resonators;
Journal_Title :
Microelectromechanical Systems, Journal of
DOI :
10.1109/JMEMS.2011.2179016