IP Library › Granted Patent US 7,427,790
Granted Patent B2
US 7,427,790 · App. 11/624,773 · Granted Sep 23, 2008

Image sensor with gain control

Assignee: Eastman Kodak Company
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Quick Facts
Patent No.
US 7,427,790
App. No.
11/624,773
Granted
Sep 23, 2008
Kind
B2
Abstract

An image sensor having a plurality of pixels; each pixel includes one or more photosensitive elements that collect charge in response to incident light; one or more transfer mechanisms that respectively transfer the charge from the one or more photosensitive elements; a charge-to-voltage conversion region having a capacitance, and the charge-to-voltage region receives the charge from the one or more photosensitive elements; a first reset transistor connected to the charge-to-voltage conversion region; a second reset transistor connected to the first reset transistor, which in combination with the first reset transistor, selectively sets the capacitance of the charge-to-voltage conversion regions from a plurality of capacitances.

Claims (29)

1. An image sensor having a plurality of pixels;

each pixel comprises:

(a) one or more photosensitive elements that collect charge in response to incident light;

(b) one or more transfer mechanisms that respectively transfer the charge from the one or more photosensitive elements;

(c) a charge-to-voltage conversion region having a capacitance, and the charge-to-voltage region receives the charge from the one or more photosensitive elements;

(d) a first reset transistor connected to the charge-to-voltage conversion region; and

(e) a second reset transistor connected to the first reset transistor, which in combination with the first reset transistor, selectively sets the capacitance of the charge-to-voltage conversion regions from a plurality of capacitances.

2. The image sensor as in claim 1 , wherein the first and second reset transistors are connected in series.

3. The image sensor as in claim 2 further comprising a third transistor connected either in series or parallel to the second transistor for further selectively setting the capacitance of the charge-to-voltage conversion regions from a plurality of capacitances.

4. The image sensor as in claim 2 further comprising one or more third transistors connected either in series or parallel to the first transistor for further selectively setting the capacitance of the charge-to-voltage conversion regions from a plurality of capacitances.

5. The image sensor as in claim 1 , wherein the charge-to-voltage conversion region is a floating diffusion.

6. The image sensor as in claim 5 , wherein the first and second reset transistors are connected in series.

7. The image sensor as in claim 6 further comprising one or more third transistors connected either in series or parallel to the second transistor for further selectively setting the capacitance of the charge-to-voltage conversion regions from a plurality of capacitances.

8. The image sensor as in claim 6 further comprising one or more third transistors connected either in series or parallel to the first transistor for further selectively setting the capacitance of the charge-to-voltage conversion regions from a plurality of capacitances.

9. A camera comprising:

an image sensor having a plurality of pixels;

each pixel comprises:

(a) one or more photosensitive elements that collect charge in response to incident light;

(b) one or more transfer mechanisms that respectively transfer the charge from the one or more photosensitive elements;

(c) a charge-to-voltage conversion region having a capacitance, and the charge-to-voltage region receives the charge from the one or more photosensitive elements;

(d) a first reset transistor connected to the charge-to-voltage conversion region; and

(e) a second reset transistor connected to the first reset transistor, which in combination with the first reset transistor, selectively sets the capacitance of the charge-to-voltage conversion regions from a plurality of capacitances.

10. The camera as in claim 9 , wherein the first and second reset transistors are connected in series.

11. The camera as in claim 10 further comprising a third transistor connected either in series or parallel to the second transistor for further selectively setting the capacitance of the charge-to-voltage conversion regions from a plurality of capacitances.

12. The camera as in claim 10 further comprising one or more third transistors connected either in series or parallel to the first transistor for further selectively setting the capacitance of the charge-to-voltage conversion regions from a plurality of capacitances.

13. The camera as in claim 9 , wherein the charge-to-voltage conversion region is a floating diffusion.

14. The camera as in claim 13 , wherein the first and second reset transistors are connected in series.

15. The camera as in claim 14 further comprising one or more third transistors connected either in series or parallel to the second transistor for further selectively setting the capacitance of the charge-to-voltage conversion regions from a plurality of capacitances.

16. The camera as in claim 14 further comprising one or more third transistors connected either in series or parallel to the first transistor for further selectively setting the capacitance of the charge-to-voltage conversion regions from a plurality of capacitances.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 19, 2007
From: PARKS, CHRISTOPHER
To: EASTMAN KODAK COMPANY
Reel/Frame 018779/0055 →
Continuity (1)
Related Publication 20080173909A1 · Jul 24, 2008