Abstract:
An apparatus includes a first circuit and a second circuit. The first circuit may be fabricated in a substrate and generally includes a first diode and a second diode (i) connected as anti-parallel diodes and (ii) physically adjacent to each other in the substrate. The second circuit may be fabricated in the substrate and generally includes a third diode and a fourth diode (i) connected as anti-parallel diodes and (ii) physically adjacent to each other in the substrate. The first circuit and the second circuit may be (a) connected in parallel, (b) physically adjacent to each other in the substrate and (c) configured to mix two input signals to generate an output signal.
Abstract:
An apparatus includes a package, a wall and a lid. The package may be configured to mount two chips configured to generate one or more signals in a millimeter-wave frequency range. The wall may be formed between the two chips. The wall generally has a plurality of conductive arches that attenuate an electromagnetic coupling between the two chips in the millimeter-wave frequency range. The lid may be configured to enclose the chips to form a cavity.
Abstract:
An apparatus having a package, a wall and a lid is disclosed. The package may be configured to mount a plurality of chips. Two of the chips may generate a plurality of signals in a millimeter-wave frequency range. A metal is exposed at a surface of the package between the two chips. The metal is generally connected to an electrical ground. The wall may be formed on the metal and between the two chips. The wall generally has a plurality of arches that (i) are conductive, (ii) are wire bonded to the metal and (iii) attenuate an electromagnetic coupling between the two chips at the millimeter-wave frequency. The lid may be configured to enclose the chips to form a millimeter-wave cavity.
Abstract:
An apparatus includes a first circuit and a second circuit. The first circuit may have a first diode and a second diode connected as anti-parallel diodes and physically adjacent to each other in a substrate. The second circuit may have a third diode and a fourth diode connected as anti-parallel diodes and physically adjacent to each other in the substrate. The first circuit and the second circuit may be configured to mix two input signals to generate an output signal. A polarity of every other physically neighboring diode may be reversed.
Abstract:
An apparatus includes a first receiver frequency conversion stage and a second receiver frequency conversion stage. The first receiver frequency conversion stage may be configured to generate at least four first intermediate frequency signals in response to a radio frequency (RF) input signal and respective phases of a first local oscillator signal. The second receiver frequency conversion stage may be configured to generate at least four output signals in response to the at least four first intermediate frequency signals and one or more phases of a second local oscillator signal. Each of the at least four output signals is generated in an independent channel in response to a respective one of the at least four first intermediate frequency signals and a respective one of the one or more phases of the second local oscillator signal.
Abstract:
An apparatus includes a laminate and a lid. The laminate generally includes a dielectric layer between a first conductive layer and a second conductive layer. The first conductive layer may include a probe configured to transfer a radio-frequency signal in a millimeter-wave band. The second conductive layer may be configured to provide a continuous ground plane parallel to the probe and separated from the probe by the dielectric layer. A plurality of channels may be (a) formed into a side of the second conductive layer opposite the dielectric layer, (b) formed to a depth less than a thickness of the second conductive layer, and (c) sized to permit gasses formed while securing the laminate to a substrate to escape from between the laminate and the substrate. The lid may be in contact with the first conductive layer.
Abstract:
An apparatus includes a first receiver frequency conversion stage and a second receiver frequency conversion stage. The first receiver frequency conversion stage may be configured to generate at least four first intermediate frequency signals in response to a radio frequency (RF) input signal and respective phases of a first local oscillator signal. The second receiver frequency conversion stage may be configured to generate at least four output signals in response to the at least four first intermediate frequency signals and one or more phases of a second local oscillator signal. Each of the at least four output signals is generated in an independent channel in response to a respective one of the at least four first intermediate frequency signals and a respective one of the one or more phases of the second local oscillator signal.
Abstract:
An apparatus having a plurality of power pads of an integrated circuit, a plurality of transistors, and one or more diodes is disclosed. Each transistors may have a drain that forms a junction with a conductive layer of the integrated circuit. The diodes may be coupled between two of the power pads. A first portion less than all of an electro-static discharge that passes through a first of the two power pads and the conductive layer may be transferred through a first of the drains in a first of the transistors. A second portion less than all of the electro-static discharge may be transferred sequentially through (a) at least one of the diodes and (b) a second of the drains in a second of the transistors.
Abstract:
An apparatus includes a first circuit and a second circuit. The first circuit may have a first diode and a second diode connected as anti-parallel diodes and physically adjacent to each other in a substrate. The second circuit may have a third diode and a fourth diode connected as anti-parallel diodes and physically adjacent to each other in the substrate. The first circuit and the second circuit may be configured to mix two input signals to generate an output signal. A polarity of every other physically neighboring diode may be reversed.