Fast switching and ultra-low power compact varactor driver
US-2024356509-A1 · Oct 24, 2024 · US
US2016014366A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2016014366-A1 |
| Application number | US-201414325744-A |
| Country | US |
| Kind code | A1 |
| Filing date | Jul 8, 2014 |
| Priority date | Jul 8, 2014 |
| Publication date | Jan 14, 2016 |
| Grant date | — |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
A charge transimpedance amplifier (CTIA) input cell includes a high gain capacitor configured to integrate charge arising from photocurrent, a low gain capacitor, and a switching element that can switch the low gain capacitor to be electrically coupled in parallel to the high gain capacitor. In some examples, the switching element is a low gain switch, which can be manually activated to switch in the low gain capacitor. In these examples, the low gain switch can be electrically disposed between the low gain capacitor and a source of the photocurrent. In other examples, the switching element is a low gain transistor, which can be automatically activated to switch in the low gain capacitor when a voltage across the high gain capacitor reaches a specified threshold. In these examples, the low gain capacitor can be electrically disposed between the low gain transistor and the source of the photocurrent.
Opening claim text (preview).
What is claimed is: 1 . A charge transimpedance amplifier (CTIA) input cell configured to receive photocurrent and produce an output voltage corresponding to an integrated charge from the photocurrent, the CTIA input cell comprising: a reset switch electrically coupled in parallel to the high gain capacitor, the reset switch being configured to periodically set a voltage to a specified reset level to mark a beginning of a video frame; a high gain capacitor electrically coupled in parallel to the reset switch, the high gain capacitor having a voltage thereacross set to the specified reset level at the beginning of the video frame, the high gain capacitor configured to integrate charge arising from the photocurrent, wherein as charge integrates on the high gain capacitor, the voltage across the high gain capacitor decreases, the high gain capacitor having a first side electrically coupled to the photocurrent; a low gain capacitor having a first side electrically coupled to the photocurrent and the first side of the high gain capacitor; a low gain transistor having a first side electrically coupled to a second side of the high gain capacitor, and having a second side electrically coupled to a second side of the low gain capacitor, the low gain transistor being configured to be electrically insulating when the voltage across the high gain capacitor exceeds a specified threshold and be electrically conducting when the voltage across the high gain capacitor is below the specified threshold; an amplifier having a first input electrically coupled to the photocurrent, to a first side of the high gain capacitor, and to a first side of the low gain capacitor, the amplifier having a second input electrically coupled to a constant voltage, the amplifier having an output electrically coupled to the second side of the high gain capacitor and the first side of the low gain transistor; wherein the amplifier output at an end of the video frame forms the output voltage. 2 . The CTIA input cell of claim 1 , further comprising: a sensor pixel configured to produce the photocurrent in response to light incident thereon; wherein the sensor pixel is electrically coupled to a first side of the high gain capacitor and a first side of the low gain capacitor. 3 . The CTIA input cell of claim 1 , further comprising a read out integrated circuit (ROIC) configured to assemble and correlate output voltages from a plurality of CTIA input cells, each CTIA input cell corresponding to a sensor pixel in an image sensor. 4 . The CTIA input cell of claim 3 , further comprising an image processing unit configured to convert the assembled and correlated output voltages from the ROIC into an electronic representation of an image incident on the image sensor. 5 . A charge transimpedance amplifier (CTIA) input cell configured to receive photocurrent and produce an output voltage corresponding to an integrated charge from the photocurrent, the CTIA input cell comprising: a high gain capacitor configured to integrate charge arising from the photocurrent; a low gain capacitor; and a low gain transistor, configured to automatically electrically couple the low gain capacitor in parallel to the high gain capacitor when a voltage across the high gain capacitor reaches a specified threshold. 6 . The CTIA input cell of claim 5 , wherein as charge integrates on the high gain capacitor, the voltage across the high gain capacitor decreases. 7 . The CTIA input cell of claim 6 , wherein the low gain transistor is configured to be electrically insulating when the voltage across the high gain capacitor exceeds the specified threshold and be electrically conducting when the voltage across the high gain capacitor is below the specified threshold. 8 . The CTIA input cell of claim 5 , wherein the low gain capacitor is electrically disposed between the low gain transistor a source of the photocurrent. 9 . The CTIA input cell of claim 5 , further comprising: a sensor pixel configured to produce the photocurrent in response to light incident thereon; wherein the sensor pixel is electrically coupled to a first side of the high gain capacitor and a first side of the low gain capacitor. 10 . The CTIA input cell of claim 5 , further comprising: an amplifier; wherein the amplifier has a first input electrically coupled to the photocurrent, to a first side of the high gain capacitor, and to a first side of the low gain capacitor; wherein the amplifier has a second input electrically coupled to a constant voltage; and wherein the amplifier produces the output voltage as its output, the output being electrically coupled to a second side of the high gain capacitor and a first side of the low gain transistor; and wherein a second side of the low gain transistor is electrically coupled to a second side of the low gain capacitor. 11 . The CTIA input cell of claim 5 , further comprising: a reset switch electrically coupled in parallel to the high gain capacitor, the reset switch being configured to periodically set a voltage across the high gain capacitor and the low gain capacitor to a specified reset level. 12 . The CTIA input cell of claim 5 , further comprising: a reset switch electrically coupled in parallel to the high gain capacitor, the reset switch being configured to periodically set a voltage across the high gain capacitor and the low gain capacitor to a specified reset level; and an amplifier, the amplifier having a first input electrically coupled to the photocurrent, to a first side of the high gain capacitor, and to a first side of the low gain capacitor, the amplifier having a second input electrically coupled to a constant voltage, the amplifier having an output electrically coupled to a second side of the high gain capacitor and a first side of the low gain transistor; wherein the amplifier output forms the output voltage. 13 . The CTIA input cell of claim 12 , further comprising a read out integrated circuit (ROIC) configured to assemble and correlate output voltages from a plurality of CTIA input cells, each CTIA input cell corresponding to a sensor pixel in an image sensor. 14 . The CTIA input cell of claim 13 , further comprising an image processing unit configured to convert the assembled and correlated output voltages from the ROIC into an electronic representation of an image incident on the image sensor. 15 . A method of operating a CTIA input cell, comprising: producing photocurrent from a sensor pixel having light incident thereon; resetting a high gain capacitor and a low gain capacitor to respective specified reset voltages at a beginning of a video frame; integrating charge arising from the photocurrent on the high gain capacitor; sensing a voltage across the high gain capacitor; if the sensed voltage has dropped to a specified threshold voltage, then automatically activating the low gain capacitor to be electrically coupled in parallel with the high gain capacitor; sampling a first voltage across the high gain capacitor; switching in the low gain capacitor; integrating the charge arising from the photocurrent on both the low gain capacitor and the high gain capacitor; sampling a second voltage across both the low gain capacitor and the high gain capacitor; and returning the first and second voltages at an end of the video frame, the first and second voltages corresponding to a light intensity incident on the sensor pixel integrated over the video frame. 16 . The method of claim 15 , further comprising, after returning the voltage: resetting the high gain capacitor and
using IC blocks as the active amplifying circuit · CPC title
Readout circuits for addressed sensors, e.g. output amplifiers or A/D converters · CPC title
Electricity · mapped topic
Electricity · mapped topic
Electricity · mapped topic
Related publications grouped by family.
Answers are generated from the same data shown on this page.