Patent classifications
B81B3/0045
MIRROR DEVICE
A mirror device includes a fixing section, mirror section, first connecting section, first beam section, second connecting section, and second beam section. The mirror section includes a major surface and a light reflecting surface. The first connecting section includes a first end connected to the mirror section and extends in a first direction from the first end. The first beam section connects the fixing section and the first connecting section and extends intersecting the first direction. The first beam section can be deformed by applying voltage. The second connecting section includes a second end connected to the first beam section and extends in the first direction from the second end on a virtual straight line extending in the first direction from the first end. The second beam section connects the fixing section and the second connecting section and extends intersecting the first direction, and can be deformed by applying voltage.
TWO-AXIS MEMS MIRROR
A MEMS mirror is provided with two rotation axes. The MEMS mirror includes a frame with a reflector and piezoelectric actuators inside, and support beams, with moving comb fingers, which alternate with static comb fingers and form electrostatic actuators. A double device layer allows separating the static comb fingers from the rest of the parts of the MEMS mirror by placing them at a different device layer. The configuration maximizes the tilt displacement and broadens operating range of the MEMS mirror. Additionally, using electrostatic comb actuator for slow drive allows effective operation in quasi-static and static modes.
MICRO-ELECTROMECHANICAL TRANSDUCER
A micro-electromechanical transducer including one or more moveable members, and a viscoelastic substance having a predetermined viscoelasticity, the viscoelastic substance being adapted to influence the response of the transducer in a predetermined manner. The micro-electromechanical transducer of the present invention may include a MEMS transducer, such as a MEMS microphone, a MEMS vibration sensor, a MEMS acceleration sensor, a MEMS receiver.
MICROELECTRONIC STRUCTURE COMPRISING MEANS OF CONTROL OF VISCOUS DAMPING
Microelectronic structure comprising a mobile mass mechanically linked to a first and to a second mechanical element by first and second mechanical linking device respectively, a polarisation source for the second mechanical linking device. The second mechanical linking means comprises two linking elements and a thermal reservoir placed between the linking elements, where at least one of the linking elements is made of piezoresistive material, where at least one of the first and second linking elements exhibit thermoelasticity properties. The thermal reservoir exhibits a thermal capacity which is different from those of the linking elements. The second linking device and the mobile mass are arranged relative to each other such that displacement of the mobile mass applies a mechanical stress to the second linking means.
MICROMECHANICAL SPRING DEVICE AND METHOD FOR MANUFACTURING A MICROMECHANICAL SPRING DEVICE
A micromechanical device and a corresponding manufacturing method. The micromechanical device includes: a spring element which is moveably coupleable or is moveably coupled to a frame unit at at least one connecting point of the spring element, the spring element including at least one web, which extends outward from the at least one connecting point; and the at least one web being structured in such a way that it includes at least one first section as well as at least one widening section for reducing a non-linearity of the spring element, which is widened compared to the first section.
ELECTROSTATICALLY ACTUATED OSCILLATING STRUCTURE WITH OSCILLATION STARTING PHASE CONTROL, AND MANUFACTURING AND DRIVING METHOD THEREOF
An electrostatically actuated oscillating structure includes a first stator subregion, a second stator subregion, a first rotor subregion and a second rotor subregion. Torsional elastic elements mounted to the first and second rotor subregions define an axis of rotation. A mobile element is coupled to the torsional elastic elements. The stator subregions are electrostatically coupled to respective regions of actuation on the mobile element. The stator subregions exhibit an element of structural asymmetry such that the electrostatic coupling surface between the first stator subregion and the first actuation region differs from the electrostatic coupling surface between the second stator subregion and the second actuation region.
MOVABLE REFLECTIVE ELEMENT AND TWO-DIMENSIONAL SCANNING DEVICE
Actuators (140), which are a pair of members, are disposed one on either side of a movable frame (120) in the X-axis direction, and oscillate the movable frame (120) about the X axis in relation to a fixed frame (110) by deformation caused by stretching and contracting of piezoelectric elements. Actuators (150), which are a pair of members, are disposed one on either side of a mirror (130) in the Y-axis direction, and oscillate the mirror (130) about the Y axis in relation to the movable frame (120) by deformation caused by stretching and contracting of the piezoelectric elements. The length of each actuator (140) extending in the Y-axis direction is longer than a distance between an inner side of the fixed frame (110) to which the actuator (140) is connected and the middle point of an outer side of the movable frame (120) in the Y-axis direction.
MULTILAYER MEMS CANTILEVERS
The present invention relates to a cantilever or membrane comprising a body and an elongated beam attached to the body. The elongated beam includes a first layer comprising a first material, a second layer comprising a second material having an elastic modulus different to that of the first material, a third layer comprising a third material having an elastic modulus different to that of the first material, where the first layer is sandwiched between the second layer and the third layer.
Microelectromechanical structure and device
A MEMS structure that provides an improved way to selectively control electromechanical properties of a MEMS device with an applied voltage. The MEMS structure includes a capacitor element that comprises at least one stator element, and at least one rotor element suspended for motion parallel to a first direction in relation to the stator element. The stator element and the rotor element form at least one capacitor element, the capacitance of which varies according to displacement of the rotor element from an initial position. The stator element and the rotor element are mutually oriented such that in at least one range of displacements of the rotor element from an initial position, the second derivative of the capacitance with respect to the displacement has negative values.
Dual substrate electrostatic MEMS switch with multiple hinges and method of manufacture
Systems and methods for forming an electrostatic MEMS switch include forming a movable cantilevered beam on a first substrate, forming the electrical contacts on a second substrate, and coupling the two substrates using a hermetic seal. Electrical access to the electrostatic MEMS switch may be made by forming vias through the thickness of the second substrate. The cantilevered beam may be formed by etching the perimeter shape in the device layer of an SOI substrate. An additional void may be formed in the movable beam such that it bends about an additional hinge line as a result of the additional void. This may give the beam and switch advantageous kinematic characteristics.