Patent classifications
H03H9/19
CRYSTAL OSCILLATOR, AND METHOD FOR MAKING THE SAME
A crystal oscillator includes a piezoelectric substrate, a first electrode, a second electrode, and a support frame. The first electrode includes a first electrode portion disposed on a first surface of the piezoelectric substrate. The second electrode is disposed on a second surface of the piezoelectric substrate opposite to the first surface of the piezoelectric substrate. The support frame is made of a photoresist material, and is disposed on the second surface. The support frame surrounds the second electrode portion. At least a portion of the second extending electrode portion is located outside the support frame. A method for making the crystal oscillator is also provided herein.
CRYSTAL OSCILLATOR, AND METHOD FOR MAKING THE SAME
A crystal oscillator includes an oscillating substrate, a hollow frame, a first electrode, and a second electrode. The oscillating substrate includes a main oscillating region and a thinned region that has a thickness smaller than that of the main oscillating region. The first and second electrodes are disposed on a first surface of the oscillating substrate and a second surface opposite to the first surface, respectively. The hollow frame is disposed on the second surface. The second electrode includes a second electrode portion that has at least one opening in positional correspondence with the thinned region. A method for making the crystal oscillator is also provided herein.
Vibrator element and vibrator device
The vibrator element includes a base part, a vibrating arm extending from the base part, and a weight provided to the vibrating arm, wherein the weight includes a thick film part, a thin film part thinner in film thickness than the thick film part, and a connection part which is located between the thick film part and the thin film part to connect the thick film part and the thin film part to each other, and which forms a taper shape gradually decreasing in film thickness in a direction from the thick film part side toward the thin film part.
Vibrator element and vibrator device
The vibrator element includes a base part, a vibrating arm extending from the base part, and a weight provided to the vibrating arm, wherein the weight includes a thick film part, a thin film part thinner in film thickness than the thick film part, and a connection part which is located between the thick film part and the thin film part to connect the thick film part and the thin film part to each other, and which forms a taper shape gradually decreasing in film thickness in a direction from the thick film part side toward the thin film part.
Resonator Device
A resonator device includes: a base having a first surface and a second surface that are in front-back relation; a resonator element that is located at a first surface with respect to the base and that includes a resonation substrate and an electrode disposed at a surface of the resonation substrate on a base side; a conductive layer that is disposed at the first surface and that includes a joint portion joined to the electrode; and a stress relaxation layer that is interposed between the base and the conductive layer and that at least partially overlaps with the joint portion in a plan view of the base. The stress relaxation layer includes an exposed portion exposed from the conductive layer.
Oscillating device
An oscillating device includes a first quartz crystal resonator, a driving circuit, a first buffer, an attenuator, a second quartz crystal resonator, and a second buffer. The first quartz crystal resonator and the second quartz crystal resonator respectively have a first resonant frequency and a second resonant frequency. The driving circuit drives the first quartz crystal resonator to generate a first oscillating signal having the first resonant frequency. The first buffer generates a first clock signal in response to the first oscillating signal. The attenuator reduces the wave swing of the first clock signal to generate an attenuated signal. The second quartz crystal resonator rectifies the attenuated signal to generate a second oscillating signal having the second resonant frequency. The second buffer generates a second clock signal in response to the second oscillating signal.
Oscillating device
An oscillating device includes a first quartz crystal resonator, a driving circuit, a first buffer, an attenuator, a second quartz crystal resonator, and a second buffer. The first quartz crystal resonator and the second quartz crystal resonator respectively have a first resonant frequency and a second resonant frequency. The driving circuit drives the first quartz crystal resonator to generate a first oscillating signal having the first resonant frequency. The first buffer generates a first clock signal in response to the first oscillating signal. The attenuator reduces the wave swing of the first clock signal to generate an attenuated signal. The second quartz crystal resonator rectifies the attenuated signal to generate a second oscillating signal having the second resonant frequency. The second buffer generates a second clock signal in response to the second oscillating signal.
Resonator Component, Resonator Device, And Method Of Manufacturing Resonator Component
A resonator component includes a resonator element which has a rectangular shape having a longitudinal direction set to a first direction and a width direction set to a second direction in a plan view, which is made of a piezoelectric material, and which has a first principal surface, a second principal surface having an obverse-reverse relationship with the first principal surface, and a first side surface and a second side surface which are configured to couple the first principal surface and the second principal surface to each other, and extend in the first direction, a first excitation electrode disposed on the first principal surface, a second excitation electrode disposed on the second principal surface, a first mounting electrode electrically coupled to the first excitation electrode, a second mounting electrode electrically coupled to the second excitation electrode, a first side-surface electrode which extends in the first direction on the first side surface, and is electrically coupled to the first mounting electrode, and a second side-surface electrode which extends in the first direction on the second side surface, and is electrically coupled to the second mounting electrode.
Resonator Component, Resonator Device, And Method Of Manufacturing Resonator Component
A resonator component includes a resonator element which has a rectangular shape having a longitudinal direction set to a first direction and a width direction set to a second direction in a plan view, which is made of a piezoelectric material, and which has a first principal surface, a second principal surface having an obverse-reverse relationship with the first principal surface, and a first side surface and a second side surface which are configured to couple the first principal surface and the second principal surface to each other, and extend in the first direction, a first excitation electrode disposed on the first principal surface, a second excitation electrode disposed on the second principal surface, a first mounting electrode electrically coupled to the first excitation electrode, a second mounting electrode electrically coupled to the second excitation electrode, a first side-surface electrode which extends in the first direction on the first side surface, and is electrically coupled to the first mounting electrode, and a second side-surface electrode which extends in the first direction on the second side surface, and is electrically coupled to the second mounting electrode.
STRUCTURE FOR PACKAGING A CRYSTAL OSCILLATOR
A structure for packaging a crystal oscillator includes a package base, at least one glue, a resonant crystal blank, and a top cover. The top of the package base has a recess. The glue is formed in the recess. The resonant crystal blank has at least one opening, at least one border area, at least one connection area, and a resonant area. The opening is arranged between the border area and the resonant area. The border area is connected to the resonant area through the connection area. The border area is formed in the recess through the glue. The top cover is formed on the top of the package base. The top cover closes the recess, the at least one glue, and the resonant crystal blank.