Claims
- 1. A microactuator, comprising:
- a stationary structure formed on a substrate, the stationary structure having at least one branch, each branch of the stationary structure having at least one electrode finger; and
- a movable structure attached to the stationary structure by a flexure, the movable structure having at least one branch and a center of rotation about which the movable structure rotates, each branch of the movable structure having at least one electrode finger, each finger being attached to a branch of the movable structure at a proximal end of the finger at an angle that is substantially perpendicular to a straight line between the proximal end of the finger and the center of rotation, each branch of the movable structure being separated from an adjacent branch of the stationary structure by a minimum-required distance along the branch of the movable structure, the minimum-required distance being based on an electrostatic attractive force generated between the branch of the movable structure and a branch of the stationary structure that is adjacent to the branch of the movable structure and is located in a direction from the branch of the movable structure that is opposite to a direction that the branch of the movable structure is driven, and is based on a minimum length of the fingers of branch of the movable structure and of the branch of the stationary structure that is necessary for producing a position-independent electrostatic force.
- 2. The microactuator according to claim 1, wherein at least one branch is arranged in a non-radial manner with respect to the center of rotation.
- 3. A method for fabricating a microactuator, the method comprising the steps of:
- forming a stationary structure on a substrate, the stationary structure having at least one branch, each branch of the stationary structure having at least one electrode finger; and
- forming a movable structure attached to the stationary structure by a flexure, the movable having at least one branch and a center of rotation about which the movable structure rotates, each branch of the movable structure having at least one electrode finger, each finger being attached to a branch of the movable structure at a proximal end of the finger at an angle that is substantially perpendicular to a straight line between the proximal end of the finger and the center of rotation, each branch of the movable structure being separated from an adjacent branch of the stationary structure by a minimum-required distance along the branch of the movable structure, the minimum-required distance being based on an electrostatic attractive force generated between the branch of the movable structure and a branch of the stationary structure that is adjacent to the branch of the movable structure and is located in a direction from the branch of the movable structure that is opposite to a direction that the branch of the movable structure is driven, and is based on a minimum length of the fingers of branch of the movable structure and of the branch of the stationary structure that is necessary for producing a position-independent electrostatic force.
- 4. The method according to claim 3, wherein at least one branch is arranged in a non-radial manner with respect to the center of rotation.
- 5. A disk drive, comprising:
- a magnetic disk having a plurality of tracks;
- a voice coil motor coarsely positioning a read/write head over a selected track; and
- a microactuator finely positioning the read/write head over the selected track, the microactuator including,
- a stationary structure formed on a substrate, the stationary structure having at least one branch, each branch of the stationary structure having at least one electrode finger; and
- a movable structure attached to the stationary structure by a flexure, the movable structure having at least one branch and a center of rotation about which the movable structure rotates, each branch of the movable structure having at least one electrode finger, each finger being attached to a branch of the movable structure at a proximal end of the finger at an angle that is substantially perpendicular to a straight line between the proximal end of the finger and the center of rotation, each branch of the movable structure being separated from an adjacent branch of the stationary structure by a minimum-required distance along the branch of the movable structure, the minimum-required distance being based on an electrostatic attractive force generated between the branch of the movable structure and a branch of the stationary structure that is adjacent to the branch of the movable structure and is located in a direction from the branch of the movable structure that is opposite to a direction that the branch of the movable structure is driven, and is based on a minimum length of the fingers of branch of the movable structure and of the branch of the stationary structure that is necessary for producing a position-independent electrostatic force.
- 6. The disk drive according to claim 5, wherein at least one branch is arranged in a non-radial manner with respect to the center of rotation.
CROSS-REFERENCE TO RELATED APPLICATIONS
The present application is related to a patent application entitled "Method and Structures To Connect Recording Head Signal Wires In A Fine Positioning Servo System Using Piggy-Back Microactuators," Ser. No. 09/000,940, invented by Satya P. Arya et al.; a patent application entitled "Shielded Electrostatic Microactuators for Magnetic-Head Positioning and Related Multilayer Technology For Fabricating Such Devices," Ser. No. 09/000,940, invented by Long-Shen Fan et al.; a patent application entitled "Integrated 3D Limiters For Microactuators," Ser. No. 09/000,554, invented by Long-Shen Fan et al.; and a patent application entitled "Rotary Electrostatic Microactuator With Optimum Flexure Arrangement", Ser. No. 09/000,555, invented by Toshiki Hirano et al., each application filed concurrently with the present application and each commonly assigned.
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