IP Library › Granted Patent US 12,272,397
Granted Patent B2
US 12,272,397 · App. 18/180,864 · Granted Apr 8, 2025

Forming operation method of resistive random access memory

Inventors: Yi Ting Hung (Kaohsiung, TW); Ko-Chi Chen (Hsinchu, TW); Tzu-Yun Chang (Hsinchu County, TW)
Assignee: United Microelectronics Corp.
G11C13/0026G11C13/0028G11C13/0038G11C13/004G11C2013/0045
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Quick Facts
Patent No.
US 12,272,397
App. No.
18/180,864
Granted
Apr 8, 2025
Kind
B2
Abstract

A forming operation method of a resistive random access memory is provided. The method includes the following steps. A positive pulse and a negative pulse are sequentially applied, by a bit line/source line driver, to multiple resistive random access memory cells in a direction form a farthest location to a nearest location based on the bit line/source line driver through a bit line and a source line to break down a dielectric film of each of the resistive random access memory cells and generate a conductive filament of each of the resistive random access memory cells.

Claims (27)

1. A forming operation method of a resistive random access memory, comprising:

disposing a plurality of resistive random access memory cells coupled in parallel between a bit line and a source line; and

sequentially applying a positive pulse and a negative pulse, by a bit line/source line driver coupled to the bit line and the source line, to a plurality of resistive random access memory cells in a direction from a farthest location of the bit line/source line driver to a nearest location of the bit line/source line driver through the bit line and the source line to break down a dielectric film of each of the resistive random access memory cells and generate a conductive filament of each of the resistive random access memory cells.

2. The forming method according to claim 1 , wherein applying the positive pulse and the negative pulse comprises:

sequentially activating a plurality of word lines in the direction to activate one of the resistive random access memory cells;

providing a positive pulse with a high forming voltage and a negative pulse with a low forming voltage to an activated resistive random access memory cell through the bit line and the source line electrically connected to the activated resistive random access memory cell.

3. The forming operation method according to claim 2 , wherein the low forming voltage is fixed, and an initial value of the high forming voltage changes along with a voltage drop distribution of the resistive random access memory cells.

4. The forming operation method according to claim 2 , wherein the low forming voltage is fixed, and an initial value of the high forming voltage changes along with a location of each of the resistive random access memory cells.

5. The forming operation method according to claim 4 , wherein the low forming voltage is between 1.6 and 3 volts, and the initial value of the high forming voltage is between 2.6 and 4 volts.

6. The forming operation method according to claim 4 , wherein the resistive random access memory cells are divided into a plurality of groups, and a resistive random access memory group with a highest initial value is located at a middle location between the farthest location and the nearest location, and

a resistive random access memory group with a lowest initial value is located at the nearest location.

7. The forming operation method according to claim 6 , wherein the highest initial value and the lowest initial value are both between 2.6 and 4 volts.

8. The forming operation method according to claim 4 , further comprising:

providing the positive pulse with the high forming voltage with the initial value in a first forming cycle of each of the resistive random access memory cells;

executing a read operation to obtain a read current flowing through each of the resistive random access memory cells;

comparing the read current with a current threshold value to judge whether the conductive filament of each of the resistive random access memory cells is formed;

completing a forming operation of each of the resistive random access memory cells when the conductive filament of each of the resistive random access memory cells is formed; and

entering a second forming cycle of the forming operation of each of the resistive random access memory cells when the conductive filament of each of the resistive random access memory cells is not formed.

9. The forming operation method according to claim 8 , wherein in the second forming cycle of each of the resistive random access memory cells, the positive pulse has the high forming voltage higher than the initial value.

10. The forming operation method according to claim 8 , further comprising:

executing the read operation to obtain the read current flowing through each of the resistive random access memory cells in the second forming cycle of each of the resistive random access memory cells;

comparing the read current with a second current threshold value to judge whether the conductive filament of each of the resistive random access memory cells is formed, wherein the second current threshold value is greater than the current threshold value; and

entering a third forming cycle of the forming operation of each of the resistive random access memory cells when the conductive filament of each of the resistive random access memory cells is not formed.

11. The forming operation method according to claim 8 , wherein when a total duration of a plurality of forming cycles performed for each of the resistive random access memory cells reaches a threshold value, the forming operation of each of the resistive random access memory cells is determined as a failure.

12. The forming operation method according to claim 11 , wherein the threshold value is between 0.2 and 1 millisecond.

13. The forming operation method according to claim 2 , wherein a pulse width of the negative pulse is fixed, and a pulse width of the positive pulse changes in different forming cycles of each of the resistive random access memory cells.

14. The forming operation method according to claim 13 , wherein the pulse width of the positive pulse increases as a number of forming cycles executed for each of the resistive random access memory cells increases.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 13, 2023
From: HUNG, YI TING; CHEN, KO-CHI; CHANG, TZU-YUN
To: UNITED MICROELECTRONICS CORP.
Reel/Frame 062968/0205 →
Priority Claims (1)
TW 112105780 · Feb 17, 2023 · national
Continuity (1)
Related Publication 20240282371A1 · Aug 22, 2024
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