Title :
Thin film shape memory alloy microactuators
Author :
Krulevitch, Peter ; Lee, Abraham P. ; Ramsey, Philip B. ; Trevino, James C. ; Hamilton, Julie ; Northrup, M. Allen
Author_Institution :
Lawrence Livermore Nat. Lab., CA, USA
fDate :
12/1/1996 12:00:00 AM
Abstract :
Thin film shape memory alloys (SMAs) have the potential to become a primary actuating mechanism for mechanical devices with dimensions in the micron-to-millimeter range requiring large forces over long displacements. The work output per volume of thin film SMA microactuators exceeds that of other microactuation mechanisms such as electrostatic, magnetic, thermal bimorph, piezoelectric, and thermopneumatic, and it is possible to achieve cycling frequencies on the order of 100 Hz due to the rapid heat transfer rates associated with thin film devices. In this paper, a quantitative comparison of several microactuation schemes is made, techniques for depositing and characterizing Ni-Ti-based shape memory films are evaluated, and micromachining and design issues for SMA microactuators are discussed. The substrate curvature method is used to investigate the thermo-mechanical properties of Ni-Ti-Cu SMA films, revealing recoverable stresses up to 510 MPa, transformation temperatures above 32°C, and hysteresis widths between 5 and 13°C. Fatigue data shows that for small strains, applied loads up to 350 MPa can be sustained for thousands of cycles. Two micromachined shape memory-actuated devices-a microgripper and microvalve-also are presented
Keywords :
copper alloys; fatigue; martensitic transformations; metallic thin films; microactuators; micromachining; nickel alloys; shape memory effects; titanium alloys; 100 Hz; 32 C; Ni-Ti; Ni-Ti-Cu; Ni-Ti-Cu SMA films; Ni-Ti-based shape memory films; SMA microactuators; cycling frequencies; design issues; fatigue data; hysteresis widths; microactuation schemes; microgripper; micromachining; microvalve; rapid heat transfer rates; recoverable stresses; substrate curvature method; thermo-mechanical properties; thin film shape memory alloy microactuators; transformation temperatures; Electrostatics; Frequency; Magnetic devices; Magnetic films; Microactuators; Piezoelectric devices; Piezoelectric films; Shape memory alloys; Thin film devices; Transistors;
Journal_Title :
Microelectromechanical Systems, Journal of