IP Library › Granted Patent US 12,518,841
Granted Patent B2
US 12,518,841 · App. 18/672,623 · Granted Jan 6, 2026

One-time-programmable memory

Inventors: Yih Wang (Hsinchu, TW); Hiroki Noguchi (Hsinchu, TW)
Assignee: Taiwan Semiconductor Manufacturing Company, Ltd.
G11C17/12G11C11/4074G11C11/4085G11C11/4094G11C17/16H10B20/25H10D84/0133H10D84/038
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Quick Facts
Patent No.
US 12,518,841
App. No.
18/672,623
Granted
Jan 6, 2026
Kind
B2
Abstract

Various one-time-programmable (OTP) memory cells are disclosed. An OTP memory cell includes an additional dopant region that extends at least partially under the gate of a transistor, such as an anti-fuse transistor. The additional dopant region provides an additional current path for a read current. Alternatively, an OTP memory cell includes three transistors; an anti-fuse transistor and two select transistors. The two select transistors can be configured as a cascaded select transistor or as two separate select transistors.

Claims (48)

1 . A one-time-programmable (OTP) memory cell, comprising:

an anti-fuse transistor comprising a first gate, a first dopant region that forms a first source/drain region, and a second dopant region that forms a second source/drain region;

a select transistor connected in series with the anti-fuse transistor, the select transistor comprising a second gate, the second dopant region that forms a third source/drain region, and a third dopant region that forms a fourth source/drain region;

an additional fourth dopant region that connects to the first dopant region and extends partially under the first gate of the anti-fuse transistor, the additional fourth dopant region creating an additional current path for a read current; and

a halo region between the first and the second dopant regions and disposed adjacent to the first dopant region and the additional fourth dopant region.

2 . The OTP memory cell of claim 1 , further comprising:

a first contact to the first dopant region; and

a second contact to the second dopant region; and

a conductive element connecting the first and the second contacts.

3 . The OTP memory cell of claim 2 , wherein the additional current path is activated with a first bias voltage applied to the first contact and a second current path is activated when the bias voltage is applied to the second contact.

4 . The OTP memory cell of claim 1 , further comprising:

a first contact to the first dopant region; and

a second contact to the second dopant region; and

a conductive element connecting the first and the second contacts.

5 . The OTP memory cell of claim 1 , further comprising a halo region between the second and the third dopant regions and adjacent the second dopant region.

6 . The OTP memory cell of claim 1 , wherein the first dopant region, the second dopant region, the third dopant region, and the additional fourth dopant region are formed with a dopant or dopants having a first conductivity type.

7 . The OTP memory cell of claim 1 , wherein the OTP memory cell is included in a plurality of OTP memory cells in a memory array.

8 . A one-time-programmable (OTP) memory cell, comprising:

an anti-fuse transistor comprising a first gate, a first dopant region that forms a first source/drain region, and a second dopant region that forms a second source/drain region;

a select transistor connected in series with the anti-fuse transistor, the select transistor comprising a second gate, the second dopant region that forms a third source/drain region, and a third dopant region that forms a fourth source/drain region;

an additional fourth dopant region that connects to the first dopant region and extends partially under the first gate of the anti-fuse transistor, the additional fourth dopant region creating an additional current path for a read current; and

a halo region between the second and the third dopant regions and adjacent the second dopant region.

9 . The OTP memory cell of claim 8 , further comprising:

a first contact to the first dopant region; and

a second contact to the second dopant region; and

a conductive element connecting the first and the second contacts.

10 . The OTP memory cell of claim 9 , wherein the additional current path is activated with a first bias voltage applied to the first contact and a second current path is activated when the bias voltage is applied to the second contact.

11 . The OTP memory cell of claim 8 , further comprising:

a first contact to the first dopant region; and

a second contact to the second dopant region; and

a conductive element connecting the first and the second contacts.

12 . The OTP memory cell of claim 8 , further comprising a halo region between the first and the second dopant regions and disposed adjacent to the first dopant region and the additional fourth dopant region.

13 . The OTP memory cell of claim 8 , wherein the first dopant region, the second dopant region, the third dopant region, and the additional fourth dopant region are formed with a dopant or dopants having a first conductivity type.

14 . The OTP memory cell of claim 8 , wherein the OTP memory cell is included in a plurality of OTP memory cells in a memory array.

15 . A memory array, comprising:

a plurality of one-time-programmable (OTP) memory cells, each OTP memory cell comprising:

an anti-fuse transistor comprising a first gate, a first dopant region that forms a first source/drain region, and a second dopant region that forms a second source/drain region;

a select transistor connected in series with the anti-fuse transistor, the select transistor comprising a second gate, the second dopant region that forms a third source/drain region, and a third dopant region that forms a fourth source/drain region;

an additional fourth dopant region that connects to the first dopant region and extends partially under the first gate of the anti-fuse transistor;

a first contact electrically connected to the first dopant region;

a second contact electrically connected to the second dopant region; and

a conductive element connecting the first and the second contacts;

wherein the first dopant region, the second dopant region, the third dopant region, and the additional fourth dopant region are formed with a dopant or dopants having a first conductivity type.

16 . The memory array of claim 15 , further comprising a bit line connected to the anti-fuse transistor and the select transistor.

17 . The memory array of claim 15 , further comprising a word line program signal line connected to the first gate of the anti-fuse transistor and a word line read signal line connected to the second gate of the select transistor.

18 . The memory array of claim 15 , further comprising a halo region between the first and the second dopant regions and disposed adjacent to the first dopant region and the additional fourth dopant region.

19 . The memory array of claim 15 , further comprising a halo region between the second and the third dopant regions and adjacent the second dopant region.

20 . The memory array of claim 15 , wherein the additional fourth dopant region creates an additional current path for a read current.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 18, 2025
From: NOGUCHI, HIRAKI
To: TAIWAN SEMICONDUCTOR MANUFACTURING COMPANY, LTD.
Reel/Frame 072941/0898 →
Continuity (3)
Continuation 17536639 · Nov 29, 2021
Division 16803202 · Feb 27, 2020
Related Publication 20240312543A1 · Sep 19, 2024
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