The present invention relates to a pixel circuit which includes a BJT (bipolar junction transistor) phototransistor having more than one selectable beta values, and an image sensor circuit using such a pixel circuit.
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The current gain factor of the BJT phototransistor 11, referred to as “beta”, is given by the ratio of the collector current to the base photo current (BJT beta=IC/IB). This BJT current gain factor is determined by the dosage of the base N-implant and the base junction width.
However, there is a dilemma between a good beta and a good signal/noise ratio (SNR). When the beta is higher, the sensitivity of the circuit is better but the SNR becomes worse; if a better SNR is desired, then a lower beta needs to be selected. It is often difficult to determine which beta value is proper at the circuit design phase because the SNR is related to the application environment of the circuit.
In view of the above, the present invention proposes a pixel circuit which includes a BJT phototransistor having more than one selectable beta values, to solve the dilemma. The present invention also proposes and an image sensor circuit using such a pixel circuit.
From one perspective, the present invention provides a pixel circuit for use in an image sensor, comprising: a bipolar junction transistor (BJT) having a base, a collector, and a plurality of emitters, wherein the BJT is a phototransistor whose current generates a pixel signal for the pixel circuit; a shutter control stage configured to operably control an exposure of the BJT; a readout stage configured to operably read out the pixel signal; and one or more switches configured to respectively control corresponding one or more of the plurality of emitters; whereby the BJT has multiple selectable beta values by controlling the one or more switches.
In one embodiment, the pixel circuit further includes a storage device for storing the pixel signal.
In one embodiment, a total number of the switches corresponds to a total number of the emitters.
In one embodiment, a total number of the switches corresponds to a total number of the emitters minus one.
In one embodiment, the BJT is one semiconductor device including: a substrate having a first conductivity type; a first well having the first conductivity type; a collector electrode having the first conductivity type in the first well; a second well having a first concentration of a second conductivity type; a first emitter electrode having the first conductivity type in the second well; a base electrode having the second conductivity type in the second well; a third well having a second concentration of the second conductivity type, wherein the second concentration is different from the first concentration; and a second emitter electrode having the first conductivity type in the third well.
From another perspective, the present invention provides an image sensor, comprising: a plurality of pixel circuits configured to operably sense an intensity of light to generate pixel signals; and column and row selectors to select the pixel circuits to output the pixel signals as an image output signal; wherein each of the pixel circuits includes: a BJT having a base, a collector, and a plurality of emitters, wherein the BJT is a phototransistor whose current generates the pixel signal for the corresponding pixel circuit; a shutter control stage configured to operably control an exposure of the BJT; a readout stage configured to operably read out the pixel signal; and one or more switches configured to respectively control corresponding one or more of the plurality of emitters; whereby the BJT has multiple selectable beta values by controlling the one or more switches.
The objectives, technical details, features, and effects of the present invention will be better understood with regard to the detailed description of the embodiments below.
The drawings as referred to throughout the description of the present invention are for illustration only, to show the interrelations among the circuit components and the interrelations among the layout areas, but not drawn according to actual scale.
One important feature of the present invention is that the BJT phototransistor 21 has multiple selectable beta values. Please refer to
Two switches SWL and SWH respectively control the current flows into the low beta emitter EL and the high beta emitter EH, respectively.
Due to different N-type implant dosages, the high beta emitter EH has a much higher current flow (from emitter to collector) as compared to the low beta emitter EL. The beta value of the BJT phototransistor 21 can be selected by switching ON/OFF the current paths through the high beta emitter EH and the low beta emitter EL. More specifically, if the switch SWL is OFF and the switch SWH is ON, a highest beta is achieved. If the switch SWL is ON and the switch SWH is OFF, a lowest beta is achieved. if both switches SWL and SWH are ON, an intermediate beta is achieved.
Because the present invention provides selectable beta values, a user of the circuit can determine a best trade-off between the desired beta (hence the desired sensitivity of the circuit) and the desired SNR.
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Certainly there can be more than three emitters if it is desired to provide more selectable beta values.
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The image sensor circuit includes plural pixel circuits 20 arranged in an array by columns and rows, a row selector 30, and a column selector 40. The row selector 30 and the column selector 40 select the pixel circuit for example by a sequential order (i.e., scan), to generate an image output signal which includes an image frame of all pixel signals of the plural pixel circuits 20.
The present invention has been described in considerable detail with reference to certain preferred embodiments thereof. It should be understood that the description is for illustrative purpose, not for limiting the scope of the present invention. It is not limited for each of the embodiments described hereinbefore to be used alone; under the spirit of the present invention, two or more of the embodiments described hereinbefore can be used in combination. For example, two or more of the embodiments can be used together, or, a part of one embodiment can be used to replace a corresponding part of another embodiment. Furthermore, those skilled in this art can readily conceive variations and modifications within the spirit of the present invention. For example . . . . As another example, to perform an action “according to” a certain signal as described in the context of the present invention is not limited to performing an action strictly according to the signal itself, but can be performing an action according to a converted form or a scaled-up or down form of the signal, i.e., the signal can be processed by a voltage-to-current conversion, a current-to-voltage conversion, and/or a ratio conversion, etc. before an action is performed. The spirit of the present invention should cover all such and other modifications and variations, which should be interpreted to fall within the scope of the following claims and their equivalents.