Title :
A Fully Integrated Oven Controlled Microelectromechanical Oscillator—Part I: Design and Fabrication
Author :
Wojciechowski, Kenneth E. ; Baker, Michael S. ; Clews, Peggy J. ; Olsson, Roy H.
Author_Institution :
Sandia Nat. Labs., Albuquerque, NM, USA
Abstract :
This paper, the first of two parts, reports the design and fabrication of a fully integrated oven controlled microelectromechanical oscillator (OCMO). This paper begins by describing the limits on oscillator frequency stability imposed by the thermal drift and electronic properties (Q, resistance) of both the resonant tank circuit and feedback electronics required to form an electronic oscillator. An OCMO is presented that takes advantage of high thermal isolation and monolithic integration of both micromechanical resonators and electronic circuitry to thermally stabilize or ovenize all the components that comprise an oscillator. This was achieved by developing a processing technique where both silicon-on-insulator complementary metal-oxide-semiconductor (CMOS) circuitry and piezoelectric aluminum nitride, AlN, micromechanical resonators are placed on a suspended platform within a standard CMOS integrated circuit. Operation at microscale sizes achieves high thermal resistances (~10 °C/mW), and hence thermal stabilization of the oscillators at very low-power levels when compared with the state-of-the-art ovenized crystal oscillators, OCXO. A constant resistance feedback circuit is presented that incorporates on platform resistive heaters and temperature sensors to both measure and stabilize the platform temperature. The limits on temperature stability of the OCMO platform and oscillator frequency imposed by the gain of the constant resistance feedback loop, placement of the heater and temperature sensing resistors, as well as platform radiative and convective heat losses are investigated.
Keywords :
CMOS analogue integrated circuits; aluminium compounds; crystal oscillators; feedback oscillators; frequency stability; low-power electronics; microfabrication; micromechanical resonators; silicon-on-insulator; temperature measurement; temperature sensors; thermal resistance; thermal stability; wide band gap semiconductors; AlN; OCMO platform; constant resistance feedback circuit; constant resistance feedback loop; convective heat losses; electronic oscillator; electronic property; feedback electronics; fully integrated oven controlled microelectromechanical oscillator; micromechanical resonators; monolithic integration; oscillator frequency stability; ovenized crystal oscillators; piezoelectric aluminum nitride; platform radiative heat losses; platform resistive heaters; platform temperature measurement; platform temperature stability; resonant tank circuit; silicon-on-insulator complementary metal-oxide-semiconductor circuitry; standard CMOS integrated circuit; temperature sensing resistors; temperature sensors; thermal drift; thermal isolation; thermal stabilization; Aluminum nitride; III-V semiconductor materials; Oscillators; Ovens; Resonant frequency; Temperature sensors; Thermal stability; Oscillator; aluminum nitride (A1N); oven controlled microelectromechanical oscillator (OCMO); ovenized crystal oscillators (OCXO); resonator; turn over temperature; turn over temperature.;
Journal_Title :
Microelectromechanical Systems, Journal of
DOI :
10.1109/JMEMS.2015.2441037