Microelectromechanical systems or “MEMS” devices are generally well-known. In the most general form, MEMS devices consist of mechanical microstructures, microsensors, microactuators and electronics integrated in the same environment, i.e., on a silicon chip. MEMS technology is an enabling technology in the field of solid-state transducers, i.e., sensors and actuators. The microfabrication technology enables fabrication of large arrays of devices, which individually perform simple tasks but in combination can accomplish complicated functions. Current applications include accelerometers, pressure, chemical and flow sensors, micro-optics, optical scanners, and fluid pumps. For example, one micromachining technique involves masking a body of silicon in a desired pattern, and then deep etching the silicon to remove unmasked portions thereof. The resulting three-dimensional silicon structure functions as a miniature mechanical force sensing device, such as an accelerometer that includes a proof mass suspended by a flexure.
What is needed are methods and devices that are simpler and more cost-effective, while still adhering as closely as possible to “best practice” design principles.
The present invention provides an apparatus and method for sensor architecture based on bulk machining of Silicon-On-Oxide (SOI) and Double-Sided Polished (DSP) wafers and fusion bond joining that simplifies manufacturing and reduces costs by providing a nearly all-silicon, hermetically sealed, microelectromechanical system (MEMS) device, such as an electrostatic accelerometer or rate gyro device.
In one aspect of the present invention, the device includes a device sensor mechanism formed in an active semiconductor layer separated from a handle layer by a dielectric layer, and a first silicon cover plate having a relatively thicker handle portion with a thin dielectric layer. The dielectric layer of the cover plate is bonded to an active layer face of the device sensor mechanism. Cavities are formed in one or both of the handle layers and corresponding dielectric layer to expose electrical leads.
In another aspect of the present invention, the cover is an SOI wafer and set backs from the active components are anisotropically etched into the handle layer while the active layer has been protectively doped.
Preferred and alternative embodiments of the present invention are described in detail below with reference to the following drawings:
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While the preferred embodiment of the invention has been illustrated and described, as noted above, many changes can be made without departing from the spirit and scope of the invention. For example, steps described and claimed may be performed in a different order without departing from the spirit and scope of the invention—e.g., doping of the active layer may be performed before etching the same layer. Accordingly, the scope of the invention is not limited by the disclosure of the preferred embodiment. Instead, the invention should be determined entirely by reference to the claims that follow.
This application is a Continuation of application Ser. No. 11/864,725 filed Sep. 28, 2007 and is hereby incorporated by reference.
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| Number | Date | Country | |
|---|---|---|---|
| Parent | 11864725 | Sep 2007 | US |
| Child | 12965569 | US |