TY - JOUR
T1 - Resonant Inductive Coupling-Based Piston Position Sensing Mechanism for Large Vertical Displacement Micromirrors
AU - Tseng, Victor Farm Guoo
AU - Xie, Huikai
N1 - Publisher Copyright:
© 1992-2012 IEEE.
PY - 2016/2/1
Y1 - 2016/2/1
N2 - This paper serves to demonstrate resonant inductive coupling-based eddy current sensing as a promising piston position sensing mechanism for large vertical displacement micromirrors that exhibit piston scan ranges above 100 μm. The sensor consists of two microfabricated coils packaged underneath the mirror plate of an electrothermally actuated piston scanning micromirror. For this paper, position sensing is achieved through the amplitude detection of the sensor oscillation signal due to the change in inductive coupling between the coils when the mirror plate undergoes its piston scan. Two sensing regions could be obtained: a front slope region that has a larger piston sensing range of ∼1 mm with a 280-nm resolution and a back slope region that has higher sensitivity over a smaller piston sensing range of ∼ 130μm with a 20-nm resolution. For demonstration purpose, the sensing coils are designed to oscillate at 9.4 MHz through a regenerative circuit and a readout circuit was used to extract the piston position information, with which the static, dynamic, and frequency response of the micromirror were measured. This paper also presents the fundamental electromagnetic analytical modeling for the sensor performance.
AB - This paper serves to demonstrate resonant inductive coupling-based eddy current sensing as a promising piston position sensing mechanism for large vertical displacement micromirrors that exhibit piston scan ranges above 100 μm. The sensor consists of two microfabricated coils packaged underneath the mirror plate of an electrothermally actuated piston scanning micromirror. For this paper, position sensing is achieved through the amplitude detection of the sensor oscillation signal due to the change in inductive coupling between the coils when the mirror plate undergoes its piston scan. Two sensing regions could be obtained: a front slope region that has a larger piston sensing range of ∼1 mm with a 280-nm resolution and a back slope region that has higher sensitivity over a smaller piston sensing range of ∼ 130μm with a 20-nm resolution. For demonstration purpose, the sensing coils are designed to oscillate at 9.4 MHz through a regenerative circuit and a readout circuit was used to extract the piston position information, with which the static, dynamic, and frequency response of the micromirror were measured. This paper also presents the fundamental electromagnetic analytical modeling for the sensor performance.
KW - Inductive position sensing
KW - eddy currents
KW - electromagnetic image theory
KW - piston scanning micromirror.
KW - resonant inductive coupling
KW - sensing coil
UR - http://www.scopus.com/inward/record.url?scp=84949921299&partnerID=8YFLogxK
U2 - 10.1109/JMEMS.2015.2499301
DO - 10.1109/JMEMS.2015.2499301
M3 - Article
AN - SCOPUS:84949921299
SN - 1057-7157
VL - 25
SP - 207
EP - 216
JO - Journal of Microelectromechanical Systems
JF - Journal of Microelectromechanical Systems
IS - 1
M1 - 7335555
ER -