TY - JOUR
T1 - Assembled Comb-Drive XYZ-Microstage with Large Displacements and Low Crosstalk for Scanning Force Microscopy
AU - Xue, Gaopeng
AU - Toda, Masaya
AU - Li, Xinghui
AU - Wang, Xiaohao
AU - Ono, Takahito
N1 - Funding Information:
This work was supported in part by the National Natural Science Foundation of China under Grant 52005291, in part by the Guangdong Basic and Applied Basic Research Foundation under Grant 2019A1515110373, and in part by the Shenzhen Science and Technology Program under Grant RCBS20200714114957381
Publisher Copyright:
© 1992-2012 IEEE.
PY - 2022/2/1
Y1 - 2022/2/1
N2 - This paper proposes and demonstrates a chip-level-microassembly comb-drive XYZ-microstage for providing large displacements and low crosstalk in scanning force microscopy applications at low temperatures. The three-dimensional structure of the comb-drive XYZ-microstage, consisting of an in-plane XY-microstage, two out-of-plane Z-actuators, and a base substrate, was accurately and orderly constructed using microassembly technology. This configuration can overcome the out-of-plane stroke-space limitation of conventional monolithic-wafer-based XYZ-microstages, and the crosstalk movements resulting from the coupling connection between in-plane and out-of-plane actuation units can be avoided. The in-plane actuation unit of the XY-microstage can provide low-crosstalk movements in the X- and Y-directions, due to the design of the decoupling-motion structure and constraint of the capacitance-coupling crosstalk of the actuation voltages. Folded-flexure springs with high stiffness were adopted in the XYZ-microstage to enhance the lateral stability of movable combs and improve the range of achievable strokes. The assembled comb-drive XYZ-microstage could provide quite large displacements of 49.2 μ m , 27.9~μ m , and 50.5~μ m in the X-, Y-, and Z-directions, respectively. Furthermore, to demonstrate the feasibility of the fabricated XYZ-microstage, a magnetic resonance force microscopy measurement system was constructed using the scanning XYZ-microstage with a specimen of 1, 1-Diphenyl-2-picrylhydrazyl radical. The magnetic resonance force from the electron spin resonance excited in the specimen could be detected by scanning the specimen in a specific resonance region. The results demonstrate that the proposed microassembly with the optimized actuation-unit structure is a promising means of establishing a comb-drive XYZ-microstage with large displacements, low crosstalk, and high adaptability.
AB - This paper proposes and demonstrates a chip-level-microassembly comb-drive XYZ-microstage for providing large displacements and low crosstalk in scanning force microscopy applications at low temperatures. The three-dimensional structure of the comb-drive XYZ-microstage, consisting of an in-plane XY-microstage, two out-of-plane Z-actuators, and a base substrate, was accurately and orderly constructed using microassembly technology. This configuration can overcome the out-of-plane stroke-space limitation of conventional monolithic-wafer-based XYZ-microstages, and the crosstalk movements resulting from the coupling connection between in-plane and out-of-plane actuation units can be avoided. The in-plane actuation unit of the XY-microstage can provide low-crosstalk movements in the X- and Y-directions, due to the design of the decoupling-motion structure and constraint of the capacitance-coupling crosstalk of the actuation voltages. Folded-flexure springs with high stiffness were adopted in the XYZ-microstage to enhance the lateral stability of movable combs and improve the range of achievable strokes. The assembled comb-drive XYZ-microstage could provide quite large displacements of 49.2 μ m , 27.9~μ m , and 50.5~μ m in the X-, Y-, and Z-directions, respectively. Furthermore, to demonstrate the feasibility of the fabricated XYZ-microstage, a magnetic resonance force microscopy measurement system was constructed using the scanning XYZ-microstage with a specimen of 1, 1-Diphenyl-2-picrylhydrazyl radical. The magnetic resonance force from the electron spin resonance excited in the specimen could be detected by scanning the specimen in a specific resonance region. The results demonstrate that the proposed microassembly with the optimized actuation-unit structure is a promising means of establishing a comb-drive XYZ-microstage with large displacements, low crosstalk, and high adaptability.
KW - Microassembly
KW - XYZ-microstage
KW - comb-drive
KW - crosstalk
KW - scanning force microscopy
KW - stroke
UR - http://www.scopus.com/inward/record.url?scp=85118688892&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=85118688892&partnerID=8YFLogxK
U2 - 10.1109/JMEMS.2021.3123962
DO - 10.1109/JMEMS.2021.3123962
M3 - Article
AN - SCOPUS:85118688892
SN - 1057-7157
VL - 31
SP - 54
EP - 62
JO - Journal of Microelectromechanical Systems
JF - Journal of Microelectromechanical Systems
IS - 1
ER -