Patent classifications
B81B2203/0392
Semiconductor structure and manufacturing method for the same
A semiconductor structure and a manufacturing method for the same are disclosed. The semiconductor structure includes a MEMS region. The MEMS region includes a sensing membrane and a metal ring. The metal ring defines a cavity under the sensing membrane.
MEMS grid for manipulating structural parameters of MEMS devices
A system and method for manipulating the structural characteristics of a MEMS device include etching a plurality of holes into the surface of a MEMS device, wherein the plurality of holes comprise one or more geometric shapes determined to provide specific structural characteristics desired in the MEMS device.
MEMS MICROPHONE AND METHOD FOR MANUFACTURING THE SAME
A method for manufacturing a semiconductor device includes providing a semiconductor structure including a first electrode layer, forming a sacrificial layer on the first electrode layer, the sacrificial layer including a recess having a pointed bottom defining a depth, forming a second electrode layer on the sacrificial layer, the second electrode layer including a first opening exposing the recess, and forming a support layer filling the recess, the first opening, and on the second electrode layer. A portion of the support layer filling the recess forms a stopper having a height equal to the depth of the recess. The method also includes forming a second opening extending through the support layer and the second electrode layer and exposing a surface of the sacrificial layer, and removing a portion of the sacrificial layer to form a cavity.
SEMICONDUCTOR STRUCTURE AND MANUFACTURING METHOD FOR THE SAME
A semiconductor structure and a manufacturing method for the same are disclosed. The semiconductor structure includes a MEMS region. The MEMS region includes a sensing membrane and a metal ring. The metal ring defines a cavity under the sensing membrane.
METHOD OF FABRICATING A MEMS AND/OR NEMS STRUCTURE COMPRISING AT LEAST TWO ELEMENTS SUSPENDED FROM A SUPPORT AT DIFFERENT DISTANCES FROM SAID SUPPORT
Method of fabricating a microelectromechanical structure et comprising two elements suspended from a support, a cavity made in the support, said cavity having two different depths, including: fabrication of a mask on an element comprising a substrate and a structured layer formed on the substrate, said structured layer comprising the two elements that will be suspended above the cavity, the mask being formed above the structured layer, said mask comprising openings with different sections, the openings being distributed in two zones, each zone comprising openings with the same section, anisotropic etching of the element so as to define the two depths under the two suspended elements in the substrate through the structured layer, isotropic etching of the element so as to make the cavity under the suspended elements.
CONNECTION LINE STRUCTURE AND FORMING METHOD THEREOF
Disclosed are a connection line structure and a forming method thereof. The connection line structure includes a passivation layer, a metal layer, and a protective layer, the metal layer is arranged on the passivation layer, and the protective layer is arranged on the metal layer. In the present application, a simple single-layer wiring design may be utilized, and a multi-layer three-dimensional wiring design may also be utilized to implement high speed transmission, a MEMS process allows for design of a connection line in a straight or bent layout, a connection line of a bent layout is flexible, and better compatibility is achieved.
TOP NOTCH SLIT PROFILE FOR MEMS DEVICE
Various embodiments of the present disclosure are directed towards a microelectromechanical systems (MEMS) device in which a slit at a movable mass of the MEMS device has a top notch slit profile. The MEMS device may, for example, be a speaker, an actuator, or the like. The slit extends through the movable mass, from top to bottom, and has a width that is uniform, or substantially uniform, from the bottom of the movable mass to proximate the top of movable mass. Further, in accordance with the top notch slit profile, top corner portions of the MEMS substrate in the slit are notched, such that a width of the slit bulges at the top of the movable mass. The top notch slit profile may, for example, increase the process window for removing an adhesive from the slit while forming the MEMS device.
MEMS GRID FOR MANIPULATING STRUCTURAL PARAMETERS OF MEMS DEVICES
A system and method for manipulating the structural characteristics of a MEMS device include etching a plurality of holes into the surface of a MEMS device, wherein the plurality of holes comprise one or more geometric shapes determined to provide specific structural characteristics desired in the MEMS device.
MEMS sensor with side port and method of fabricating same
A MEMS sensor package comprises a MEMS die that includes a substrate having a sensor formed thereon and a cap layer coupled to the substrate. The cap layer has a cavity overlying a substrate region at which the sensor resides. A port extends between the cavity and a side wall of the MEMS die and enables admittance of fluid into the cavity. Fabrication methodology entails providing a substrate structure having sensors formed thereon, providing a cap layer structure having inwardly extending cavities, and forming a channel between pairs of the cavities. The cap layer structure is coupled with the substrate structure and each channel is interposed between a pair of cavities. A singulation process produces a pair of sensor packages, each having a port formed by splitting the channel, where the port is exposed during singulation and extends between its respective cavity and side wall of the sensor package.
MICROMECHANICAL COMPONENT AND METHOD FOR PRODUCING SAME
A method for producing micromechanical components is provided. A liquid starting material which can be cured by means of irradiation is applied onto a substrate. A partial volume of the starting material is cured by means of a local irradiation process using a first radiation source in order to produce at least one three-dimensional structure. The three-dimensional structure delimits at least one closed cavity in which at least one part of the liquid starting material is enclosed. Alternatively or in addition, a micromechanical component is provided that contains a liquid starting material, which is partly cured by means of irradiation, and at least one cavity in which the liquid starting material is enclosed.