IP Library Granted Patent US 12,482,385
Granted Patent B2
US 12,482,385 · App. 18/583,781 · Granted Nov 25, 2025

Sensing driver, method of driving the same, and display device including the same

Inventor: Hayong Jung (Yongin-si, KR)
Assignee: Samsung Display Co., Ltd.
G09G3/006G09G3/32G09G3/3258G09G2300/0819G09G2300/0852G09G2320/045G09G2330/12
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Quick Facts
Patent No.
US 12,482,385
App. No.
18/583,781
Granted
Nov 25, 2025
Kind
B2
Abstract

A sensing driver includes a sensing channel which samples a first sensing voltage of a first sensing line in a first sampling period, samples a second sensing voltage of a second sensing line in a second sampling period, and includes a sampling capacitor, a first line selection switch which connects the first sensing line to the sensing channel in a first sub-sensing period, and a second line selection switch which connects the second sensing line to the sensing channel in a second sub-sensing period. A voltage having a first initialization level is applied to a first electrode of the sampling capacitor in a first capacitor initialization period, and a voltage having a second initialization level different from the first initialization level is applied to the first electrode of the sampling capacitor in a second capacitor initialization period.

Claims (79)

1 . A sensing driver which performs a sensing operation on a first sensing line and a second sensing line in a sensing period including a first sub-sensing period and a second sub-sensing period, comprising:

a sensing channel which samples a first sensing voltage of the first sensing line in a first sampling period of the first sub-sensing period, samples a second sensing voltage of the second sensing line in a second sampling period of the second sub-sensing period, and includes a sampling capacitor having a first electrode and a second electrode;

a first line selection switch which connects the first sensing line to the sensing channel in the first sub-sensing period; and

a second line selection switch which connects the second sensing line to the sensing channel in the second sub-sensing period,

wherein a voltage having a first initialization level is applied to the first electrode of the sampling capacitor in a first capacitor initialization period of the first sub-sensing period, and

wherein a voltage having a second initialization level different from the first initialization level is applied to the first electrode of the sampling capacitor in a second capacitor initialization period of the second sub-sensing period.

2 . The sensing driver of claim 1 , wherein the second initialization level is higher than the first initialization level.

3 . The sensing driver of claim 1 , wherein the second initialization level is preset before the sensing period.

4 . The sensing driver of claim 1 , wherein the second initialization level is set based on the first sensing voltage and the second sensing voltage.

5 . The sensing driver of claim 1 , wherein the sensing channel further includes:

a first sampling switch which connects the first and second selection switches to the first electrode of the sampling capacitor in response to a sampling signal;

a first reference switch which applies a reference voltage to the second electrode of the sampling capacitor in response to a reference signal;

a first initialization voltage switch which applies an initialization voltage to a first intermediate node in response to a first capacitor initialization signal; and

a first capacitor initialization switch which connects the first intermediate node to the first electrode of the sampling capacitor in response to the reference signal.

6 . The sensing driver of claim 5 , further comprising: a reference channel,

wherein the reference channel includes:

a reference capacitor which has a first electrode and a second electrode;

a second sampling switch which applies the initialization voltage to the first electrode of the reference capacitor in response to the sampling signal;

a second reference switch which applies the reference voltage to the second electrode of the reference capacitor in response to the reference signal;

a second initialization voltage switch which applies the initialization voltage to a second intermediate node in response to the first capacitor initialization signal; and

a second capacitor initialization switch which connects the second intermediate node to the first electrode of the reference capacitor in response to the reference signal.

7 . The sensing driver of claim 6 , wherein the initialization voltage has a first voltage level in the first capacitor initialization period, and has a second voltage level different from the first voltage level in the second capacitor initialization period.

8 . The sensing driver of claim 6 , wherein the sensing channel further includes a first reference voltage switch which applies the reference voltage to the first intermediate node in response to a second capacitor initialization signal, and

wherein the reference channel further includes a second reference voltage switch which applies the reference voltage to the second intermediate node in response to the second capacitor initialization signal.

9 . The sensing driver of claim 8 , wherein the reference voltage has a third voltage level in the first capacitor initialization period, and has a fourth voltage level different from the third voltage level in the second capacitor initialization period.

10 . The sensing driver of claim 8 , wherein the sensing channel further includes a first external voltage switch which applies an external voltage to the first intermediate node in response to a third capacitor initialization signal, and

wherein the reference channel further includes a second external voltage switch which applies the external voltage to the second intermediate node in response to the third capacitor initialization signal.

11 . The sensing driver of claim 10 , wherein the external voltage has a fifth voltage level in the first capacitor initialization period, and has a sixth voltage level different from the fifth voltage level in the second capacitor initialization period.

12 . The sensing driver of claim 1 , further comprising:

a sensing line initialization circuit which simultaneously initializes the first sensing line and the second sensing line in the first sub-sensing period.

13 . The sensing driver of claim 1 , further comprising:

an analog-to-digital converter; and

a switch matrix which connects the sensing channel to the analog-to-digital converter.

14 . The sensing driver of claim 1 , wherein the sensing period includes:

the first sub-sensing period in which a first sensing operation on the first sensing line is performed;

the second sub-sensing period in which a second sensing operation on the second sensing line is performed; and

a data output period in which first sensing data corresponding to the first sensing voltage and second sensing data corresponding to the second sensing voltage is output,

wherein the first sub-sensing period includes:

a sensing line initialization period in which the first sensing line and the second sensing line are simultaneously initialized;

the first capacitor initialization period in which the sampling capacitor is initialized;

the first sampling period in which the first sensing voltage is sampled; and

a first analog-to-digital conversion period in which the first sensing voltage is converted into the first sensing data,

wherein the second sub-sensing period includes:

the second capacitor initialization period in which the sampling capacitor is initialized;

the second sampling period in which the second sensing voltage is sampled; and

a second analog-to-digital conversion period in which the second sensing voltage is converted into the second sensing data.

15 . The sensing driver of claim 1 , wherein the sensing driver performs a sensing operation on N odd-numbered sensing lines, where N is a natural number greater than or equal to 2, including the first sensing line and N even-numbered sensing lines including the second sensing line in the sensing period,

wherein the sensing driver comprises:

N sensing channels which include the sensing channel;

N first line selection switches which connect the N odd-numbered sensing lines to the N sensing channels in the first sub-sensing period;

N second line selection switches which connect the N even-numbered sensing lines to the N sensing channels in the second sub-sensing period;

an analog-to-digital converter; and

a switch matrix which sequentially connects the N sensing channels to the analog-to-digital converter in a first analog-to-digital conversion period of the first sub-sensing period, and sequentially connects the N sensing channels to the analog-to-digital converter in a second analog-to-digital conversion period of the second sub-sensing period, and

wherein the analog-to-digital converter sequentially converts N first sensing voltages of the N odd-numbered sensing lines into N first sensing data in the first analog-to-digital conversion period, and sequentially converts N second sensing voltages of the N even-numbered sensing lines into N second sensing data in the second analog-to-digital conversion period.

16 . The sensing driver of claim 15 , wherein the second initialization level is set as an average of the N first sensing voltages and the N second sensing voltages.

17 . The sensing driver of claim 15 , further comprising:

a data output unit which sequentially stores the N first sensing data in the first analog-to-digital conversion period, sequentially stores the N second sensing data in the second analog-to-digital conversion period, and outputs the N first sensing data and the N second sensing data in a data output period of the sensing period.

18 . The sensing driver of claim 17 , wherein the data output unit rearranges the N first sensing data and the N second sensing data such that each of the N second sensing data is disposed between adjacent two of the N first sensing data.

19 . A method of driving a sensing driver which performs a sensing operation on a first sensing line and a second sensing line in a sensing period including a first sub-sensing period and a second sub-sensing period, the method comprising:

connecting the first sensing line to a sensing channel in the first sub-sensing period;

applying a voltage having a first initialization level to a first electrode of a sampling capacitor of the sensing channel in a first capacitor initialization period of the first sub-sensing period;

sampling a first sensing voltage of the first sensing line in a first sampling period of the first sub-sensing period;

applying a voltage having a second initialization level different from the first initialization level to the first electrode of the sampling capacitor in a second capacitor initialization period of the second sub-sensing period;

connecting the second sensing line to the sensing channel in the second sub-sensing period; and

sampling a second sensing voltage of the second sensing line in a second sampling period of the second sub-sensing period.

20 . The method of claim 19 , wherein the second initialization level is higher than the first initialization level.

21 . The method of claim 19 , wherein the second initialization level is preset before the sensing period.

22 . The method of claim 19 , wherein the second initialization level is set based on the first sensing voltage and the second sensing voltage.

23 . A display device, comprising:

a display panel which includes a first pixel and a second pixel;

a scan driver which provides a scan signal and a sensing signal to each of the first and second pixels;

a data driver which provides a data signal to each of the first and second pixels; and

a sensing driver which performs a sensing operation on a first sensing line connected to the first pixel and a second sensing line connected to the second pixel in a sensing period including a first sub-sensing period and a second sub-sensing period,

wherein the sensing driver includes:

a sensing channel which samples a first sensing voltage of the first sensing line in a first sampling period of the first sub-sensing period, samples a second sensing voltage of the second sensing line in a second sampling period of the second sub-sensing period, and includes a sampling capacitor;

a first line selection switch which connects the first sensing line to the sensing channel in the first sub-sensing period; and

a second line selection switch which connects the second sensing line to the sensing channel in the second sub-sensing period,

wherein a voltage having a first initialization level is applied to a first electrode of the sampling capacitor in a first capacitor initialization period of the first sub-sensing period, and

wherein a voltage having a second initialization level different from the first initialization level is applied to the first electrode of the sampling capacitor in a second capacitor initialization period of the second sub-sensing period.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 21, 2024
From: JUNG, HAYONG
To: SAMSUNG DISPLAY CO., LTD.
Reel/Frame 066521/0555 →
Priority Claims (1)
KR 10-2023-0115552 · Aug 31, 2023 · national
Continuity (1)
Related Publication 20250078700A1 · Mar 6, 2025
References Cited (5)
US 11915650B2 · Jung · 2024 [cited by examiner]
US 12159007B1 · Huang · 2024 [cited by examiner]
US 20150130780A1 · Kwon · 2015 [cited by examiner]
US 20230317001A1 · Jung et al. · 2023 [cited by applicant]
KR 1020230143252A · 2023 [cited by applicant]