The present invention relates to a solid state imaging device which can be operated to provide an improved shutter function.
There are various basic CMOS pixel structures. One common type, with 3 transistors per pixel, is described in U.S. Pat. No. 4,407,010 (referred to as the CMOS 3T pixel), and is illustrated in
The typical voltage on a photodiode is shown in
Typically, as shown in
As the rows are read out sequentially, they must also be reset sequentially. This keeps the integration time Tint constant for the whole sensor, and the brightness of the image constant over the image plane. This operation is called “rolling blade shutter” and is analogous to how a physical shutter in a 35 mm SLR camera works. In the CMOS 3T sensor, the integration time is variable. This is achieved by varying the time between the reset and readout pulse. This is also similar to how 35 mm SLR cameras work. The shutter blades move over the film at a constant rate, but a gap between the blades is adjusted to adjust the effective shutter speed.
Another common type of CMOS pixel has 4 transistors. There are various types of implementation, one of which is shown in
The 4T pixel has another advantage, which is its ability to form an electronic shutter. Although arrays of either 3T or 4T pixels can be reset simultaneously, the sequential readout mechanism of the 3T pixel prevents simultaneous readout. The 4T pixel does not suffer from this problem since it has a storage element incorporated inside each pixel (Csn in
The readout mechanism then proceeds in a row sequential fashion, similar to the mechanism used in the 3T pixels. As all the pixels in the array are reset and measured simultaneously, the array captures a snapshot of the light pattern falling on the sensor, unlike the rolling blade shutter of the 3T pixels. This technique is of great value for hand-held operation of the camera as the effect of camera shake is reduced as the total time for which the array is collecting light is minimized, as opposed to the time for which an individual pixel is collecting light.
There are significant disadvantages with a 4T pixel. The extra circuitry (M4, Csn) occupies an area on the pixel and this reduces the amount of light reaching the photodiode. Transferring all the charge from Cpd to Csn is difficult to achieve. Special CMOS manufacturing techniques are often employed to change the structure of the photodiode Cpd or the transfer transistor M4. These manufacturing techniques are very costly since as they are non-standard and are also difficult to reliably achieve.
There are also some linear arrays (see
An object of the present invention is to provide a solid state image sensor which, like the 3T sensor, can be manufactured by standard techniques, but which also is capable of providing a true electronic shutter.
In view of the foregoing background, this and other objects, advantages and features of the present invention are provided by a solid state imaging device comprising a two-dimensional array of pixels defining an image plane, and readout electronics comprising at least one store circuit laterally adjacent the image plane for reading signals therefrom in a predetermined manner.
The invention is based upon locating the readout electronics off the image plane of the device. In preferred forms of the invention, this is facilitated by connecting each pixel to its associated readout electronics via a multiconductor signal bus. The readout electronics may be laterally adjacent one side of the image plane, are they may be laterally adjacent opposing sides of the image plane.
Each pixel preferably comprises a photosensitive diode, and a switching circuit for resetting and discharging the diode. The switching circuit may includes a first transistor for applying a reset pulse, and a second transistor for connecting the diode to a conductor within the multiconductor signal bus.
The at least one store circuit preferably comprises a plurality of store circuits, with a store circuit corresponding to each pixel. Each store circuit may comprise a first store circuit for storing a reset value, and a second store circuit for storing a read out value. The read out value of a given pixel may be modified by the stored reset value for that pixel. A third store circuit stores a second reset value, with a current reset value and a current read out value being processed simultaneously based upon application of a new reset pulse.
Embodiments of the invention will now be described, by way of example only, referring to the drawings in which:
A basic feature of the invention is to provide a storage node per pixel, and to avoid degrading the fill factor and hence light sensitivity, by locating the storage element away from the image plane. Referring to
The switches S2-1, S2-2 will typically be implemented as MOSFET transistors. The current loads Iload are to ensure correct operation of sense transistor M1.
The operation of the array is as follows. At point 1 (see
The embodiment of
The system described in
Referring to
This technique is similar to that used in U.S. Pat. No. 5,122,881 but is modified to deal with the present situation where no multiplex transistor is present.
Although the technique described previously (
The solution to this problem is shown in
To understand the operation of the circuit in
At this time the system has collected a complete set of reset and image values and is ready to readout. Before this occurs, the next acquisition cycle starts. At point 4, Vrst goes high causing all the M2s in the array to conduct for resetting the photodiodes in the array. As soon as this is complete, (point 5) S4 goes high enabling CresB to sample the reset value of the pixel. As the image array collects light, the pixels' capacitors are accessed sequentially. At point 6, S2 is closed to output the image value Vsn stored on Csn onto the output signal conductor. For this sequence of images, S4 is closed to output the reset value Vres stored on CresA onto the reset value A conductor. The image array collects light until time 7 when the voltage corresponding to the pixel's exposure to light is collected. S1 is closed and the voltage is stored on the pixel's Csn.
At this time the system has collected another complete set of reset and image values and is ready to readout. Before this occurs, the next acquisition cycle starts. Point 8 is identical to point 1, and point 9 is identical to point 2. As the image array collects light, the pixels' capacitors are accessed sequentially. At point 10, S2 is closed to output the image value Vsn stored on Csn onto the output signal conductor. For this sequence of images, S6 is closed to output the reset value Vres stored on CresB onto the reset value B conductor.
The system continues to operate using the sequence described above. The important feature to note in
In the layout shown in
An improved layout is shown in
The following Table 1 illustrates the advantages.
As can be seen in the final column, the improved layout technique of
Turning to
Using a differential, charge sensitive amplifier 16 as shown in
The nature of the operational amplifier is to ensure that its input remains at the common mode voltage. By doing so there is no change in the voltage on the lines 18, 20 and 22 and so there can be no loss of charge. During the readout, the voltages on Csn, CresA, CresB are also set to the common mode voltage. The change in voltage from that which was measured off the array requires a current to flow. This comes from the output of the op-amp 16 via the feedback capacitors Cf1, Cf2. For correct operation (symmetrical operation) the capacitance of Cf1=Cf2 and Csn=CresA=CresB. Hence:
Out1−Out2=(Vsignal−Vreset)×Csn/Cf1
Modifications and improvements may be made to the foregoing within the scope of the invention.
| Number | Date | Country | Kind |
|---|---|---|---|
| 0027931.5 | Nov 2000 | GB | national |
| Number | Name | Date | Kind |
|---|---|---|---|
| 5055930 | Nagasaki et al. | Oct 1991 | A |
| 5621660 | Chaddha et al. | Apr 1997 | A |
| 5698844 | Shinohara et al. | Dec 1997 | A |
| 5742892 | Chaddha | Apr 1998 | A |
| 5768535 | Chaddha et al. | Jun 1998 | A |
| 5928331 | Bushmitch | Jul 1999 | A |
| 5941951 | Day et al. | Aug 1999 | A |
| 6091777 | Guetz et al. | Jul 2000 | A |
| 6094636 | Kim | Jul 2000 | A |
| 6130712 | Miyazaki et al. | Oct 2000 | A |
| 6173013 | Suzuki et al. | Jan 2001 | B1 |
| 6215766 | Ammar et al. | Apr 2001 | B1 |
| 6233017 | Chaddha | May 2001 | B1 |
| 6256623 | Jones | Jul 2001 | B1 |
| 6263022 | Chen et al. | Jul 2001 | B1 |
| 6266817 | Chaddha | Jul 2001 | B1 |
| 6275531 | Li | Aug 2001 | B1 |
| 6275847 | Robinson | Aug 2001 | B1 |
| 6466265 | Lee et al. | Oct 2002 | B1 |
| 6667768 | Fossum | Dec 2003 | B1 |
| 6972795 | Etoh et al. | Dec 2005 | B1 |
| 7176972 | Mutoh et al. | Feb 2007 | B2 |
| 20010016008 | Bahl et al. | Aug 2001 | A1 |
| 20010023429 | Barker et al. | Sep 2001 | A1 |
| 20020154231 | Decker et al. | Oct 2002 | A1 |
| Number | Date | Country | |
|---|---|---|---|
| 20020114025 A1 | Aug 2002 | US |