IP Library Patent Application 12466062
Patent Application
App. No. 12/466,062

LIQUID CRYSTAL DISPLAY AND DRIVING METHOD OF THE SAME

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Quick Facts
Patent No.
US None
App. No.
12/466,062
Abstract

A liquid crystal display (“LCD”) and a driving method of the same are provided. The LCD includes a photo sensor including a ring oscillator having cascade-connected inverters, wherein the output signal of the ring oscillator has a frequency varying according to the ambient luminance.

Claims (23)

1 . A liquid crystal display comprising a photo sensor including a ring oscillator having cascade-connected inverters, wherein an output signal of the ring oscillator has a frequency varying according to ambient luminance.

2 . The liquid crystal display of claim 1 , wherein each of the inverters includes a first transistor having an active layer into which ambient light is incident, and a second transistor having an active layer by which ambient light is shielded.

3 . The liquid crystal display of claim 1 , wherein the inverters comprise an odd number of inverters.

4 . The liquid crystal display of claim 1 , wherein each of the inverters includes a first transistor and a second transistor, which are serially connected to each other, a power supply voltage is applied to a drain electrode of the first transistor and a source electrode of the second transistor is connected to a ground terminal, an input voltage Vi is applied to a gate electrode of the second transistor, and an output voltage is output from a terminal commonly connected to a gate electrode of the first transistor, a source electrode of the first transistor and a drain electrode of the second transistor.

5 . The liquid crystal display of claim 1 , further comprising an output buffer transmitting the output signal of the ring oscillator.

6 . The liquid crystal display of claim 5 , wherein the output buffer amplifies the output signal for transmission.

7 . The liquid crystal display of claim 6 , wherein the output buffer comprises a plurality of inverters which are serially connected to each other.

8 . The liquid crystal display of claim 7 , wherein each of the inverters includes a first transistor and a second transistor, which are serially connected to each other, a power supply voltage is applied to a drain electrode of the first transistor and a source electrode of the second transistor is connected to a ground terminal, an input voltage Vi is applied to a gate electrode of the second transistor, and an output voltage is output from a terminal commonly connected to a gate electrode of the first transistor, a source electrode of the first transistor and a drain electrode of the second transistor.

9 . The liquid crystal display of claim 1 , wherein the frequency of the output signal is proportional to a power of a real number of the ambient luminance.

10 . The liquid crystal display of claim 1 , further comprising a light-emitting unit supplying back light from below the ring oscillator, wherein each of the inverters includes a first transistor and a second transistor, each having a gate electrode, an active layer disposed over the gate electrode, and a source electrode and a drain electrode disposed on the active layer, the active layer of the first transistor including a non-overlapping area that does not partially overlap with the gate electrode of the first transistor such that the active layer of the first transistor is partially exposed to the back light, and the active layer of the second transistor completely overlapping with the gate electrode of the second transistor such that the active layer of the second transistor is shielded from the back light.

11 . The liquid crystal display of claim 10 , wherein external light is incident from above the ring oscillator, and a light-shielding portion for shielding the external light is formed over the first transistor and the second transistor.

12 . The liquid crystal display of claim 10 , wherein an overlap length of the gate electrode of the first transistor and the source electrode and an overlap length of the gate electrode of the first transistor and the drain electrode are set to be minimum to acquire processing margins, respectively.

13 . The liquid crystal display of claim 10 , wherein the gate electrode of the second transistor includes a shield area extending from the active layer of the second transistor by over 10 μm.

14 . The liquid crystal display of claim 1 , wherein external light is incident from above the ring oscillator, wherein each of the inverters includes a first transistor and a second transistor, which are serially connected to each other, and wherein a light-shielding portion for shielding the external light is formed over the second transistor.

15 . The liquid crystal display of claim 14 , further comprising a light-emitting unit supplying back light from below the ring oscillator, wherein each of the first transistor and the second transistor has a gate electrode, an active layer disposed over the gate electrode, and a source electrode and a drain electrode disposed on the active layer, and the active layer completely overlapping with the gate electrode.

16 . The liquid crystal display of claim 14 , wherein the gate electrodes of the first and second transistors each include a shield area extending from the active layer by over 10 μm.

17 . A driving method of a liquid crystal display, the driving method comprising:

providing a liquid crystal display comprising a photo sensor including a ring oscillator having cascade-connected inverters, wherein an output signal of the ring oscillator has a frequency varying according to luminance of ambient light;

supplying the ring oscillator with the ambient light; and

measuring the luminance of ambient light using the frequency.

18 . The driving method of claim 17 , wherein each of the inverters includes a first transistor having an active layer into which ambient light is incident, and a second transistor having an active layer by which ambient light is shielded.

19 . The driving method of claim 17 , wherein the liquid crystal display further comprises a light-emitting unit supplying back light from below the ring oscillator, and after measuring the luminance of ambient light, the driving method further comprises compensating for the luminance of back light.

20 . The driving method of claim 17 , wherein the liquid crystal display includes a plurality of photo sensors arranged therein and external light is incident from above the oscillator, and measuring the luminance of ambient light further comprises determining a touch point on the liquid crystal display after measuring the luminance of ambient light by each of the plurality of photo sensors.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 27, 2012
From: SAMSUNG ELECTRONICS CO., LTD.
To: SAMSUNG DISPLAY CO., LTD.
Reel/Frame 029093/0177 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 14, 2009
From: JIN, SUNG HUN; PARK, MUN-SOO; LEE, GI-CHANG; LEE, KI-CHAN
To: SAMSUNG ELECTRONICS CO., LTD.
Reel/Frame 022685/0960 →