IP Library › Granted Patent US 12,119,056
Granted Patent B2
US 12,119,056 · App. 17/701,463 · Granted Oct 15, 2024

Multiple transistor architecture for three-dimensional memory arrays

Inventor: Ferdinando Bedeschi (Biassono, IT)
Assignee: Micron Technology, Inc.
G11C13/0026G11C13/0004G11C16/0483H10B43/20G11C2213/71
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Quick Facts
Patent No.
US 12,119,056
App. No.
17/701,463
Granted
Oct 15, 2024
Kind
B2
Abstract

Methods, systems, and devices for multiple transistor architecture for three-dimensional memory arrays are described. A memory device may include conductive pillars coupled with an access line using two transistors positioned between the conductive pillar and the access line. As part of an access operation for a memory cell coupled with the conductive pillar, the memory device may be configured to bias the access line to a first voltage and activate the two transistors using a second voltage to couple the conductive pillar with the access line. Additionally, the memory device may be configured to bias a gate of a first transistor and a gate of a second transistor coupling an unselected conductive pillar with the access line to a third and fourth voltage, respectively, which may deactivate at least one of the first or second transistor during the access operation and isolate the unselected conductive pillar from the access line.

Claims (56)

1. An apparatus, comprising:

a conductive pillar extending through a plurality of levels of a memory array, wherein, at each level of the plurality of levels, one or more memory cells of the memory array are coupled with the conductive pillar and a respective word line;

a bit line;

a first transistor coupled with the bit line and the conductive pillar;

a second transistor coupled with the bit line and the first transistor, the first transistor and the second transistor configured to selectively couple the conductive pillar with the bit line;

a first gate line coupled with a gate of the first transistor; and

a second gate line coupled with a gate of the second transistor, wherein voltages on the first gate line and the second gate line are biased based at least in part on performing an access operation using the conductive pillar.

2. The apparatus of claim 1 , wherein to couple the conductive pillar with the bit line, the first gate line is configured to bias the gate of the first transistor to a first voltage and the second gate line is configured to bias the gate of the second transistor to the first voltage.

3. The apparatus of claim 1 , wherein to decouple the conductive pillar from the bit line, the first gate line is configured to bias the gate of the first transistor to a first voltage and the second gate line is configured to bias the gate of the second transistor to a second voltage.

4. The apparatus of claim 1 , further comprising:

a decoder coupled with the first gate line and the second gate line, wherein the decoder is configured to bias the first gate line and the second gate line based at least in part on performing the access operation using the conductive pillar.

5. The apparatus of claim 4 , wherein to bias the first gate line and the second gate line, the decoder is configured to apply a first voltage to the first gate line and to the second gate line based at least in part on a second voltage of the bit line, and the decoder is configured to apply a third voltage to the first gate line and to the second gate line based at least in part on a fourth voltage of the bit line.

6. The apparatus of claim 1 , further comprising:

a second conductive pillar extending through the plurality of levels;

a third transistor coupled with the bit line and the second conductive pillar;

a fourth transistor coupled with the bit line and the second conductive pillar;

a third gate line coupled with a gate of the third transistor; and

a fourth gate line coupled with a gate of the fourth transistor.

7. The apparatus of claim 6 , wherein voltages on the third gate line and the fourth gate line are biased independently from the voltages on the first gate line and the second gate line based at least in part on performing the access operation using the conductive pillar.

8. The apparatus of claim 6 , further comprising:

a conductive line coupled with the conductive pillar and the second conductive pillar, wherein the conductive line is positioned at an end of the conductive pillar and the second conductive pillar opposite the first transistor, the second transistor, the third transistor, and the fourth transistor.

9. The apparatus of claim 1 , wherein the second transistor comprises a cascode.

10. The apparatus of claim 1 , wherein a terminal of the first transistor is coupled with a terminal of the second transistor.

11. The apparatus of claim 1 , wherein the first transistor and the second transistor are arranged in a series configuration between the conductive pillar and the bit line.

12. The apparatus of claim 1 , wherein the one or more memory cells comprise a chalcogenide material.

13. The apparatus of claim 1 , wherein the first transistor and the second transistor comprise n-mos transistors.

14. A method, comprising:

performing an access operation for a memory cell that is coupled with a conductive pillar extending through a plurality of levels of a memory array, wherein, at each level of the plurality of levels, one or more memory cells of the memory array are coupled with the conductive pillar and a respective word line, the access operation comprising:

coupling the conductive pillar with a bit line based at least in part on activating a first transistor coupled with the conductive pillar and the bit line and activating a second transistor coupled with the first transistor and the bit line, wherein activating the first transistor and activating the second transistor comprises biasing, via a first gate line coupled with a gate of the first transistor, the gate of the first transistor to a second voltage and biasing, via a second gate line coupled with a gate of the second transistor, the gate of the second transistor to the second voltage, wherein the second voltage is greater than a first voltage; and

biasing the bit line to the first voltage based at least in part on coupling the conductive pillar with the bit line.

15. The method of claim 14 , wherein performing the access operation further comprises:

biasing, via a third gate line coupled with a gate of a third transistor, the gate of the third transistor to a third voltage, wherein the third transistor is coupled with the bit line and a second conductive pillar coupled with a second memory cell; and

biasing, via a fourth gate line coupled with a gate of a fourth transistor, the gate of the fourth transistor to a fourth voltage, wherein the fourth transistor is coupled with the third transistor and the bit line, and wherein the fourth voltage is less than the first voltage and the third voltage is less than the fourth voltage.

16. The method of claim 14 , further comprising:

performing a second access operation for the memory cell, the second access operation comprising:

coupling the conductive pillar with the bit line based at least in part on biasing a gate of the first transistor to a second voltage and biasing a gate of the second transistor to the second voltage, wherein the second voltage is less than the first voltage; and

biasing the bit line to a third voltage based at least in part on coupling the conductive pillar with the bit line, wherein the third voltage is less than the second voltage.

17. The method of claim 14 , further comprising:

biasing, outside of the access operation, a gate of the first transistor to a second voltage; and

biasing, outside of the access operation, a gate of the second transistor to a third voltage, wherein the third voltage is less than the first voltage and the second voltage is less than the third voltage.

18. The method of claim 17 , wherein biasing the gate of the first transistor to the second voltage and biasing the gate of the second transistor to the third voltage isolates the conductive pillar from the bit line.

19. A memory system, comprising:

one or more controllers associated with a memory device, wherein the one or more controllers are configured to cause the memory system to:

perform an access operation for a memory cell that is coupled with a conductive pillar extending through a plurality of levels of a memory array, wherein, at each level of the plurality of levels, one or more memory cells of the memory array are coupled with the conductive pillar and a respective word line, the access operation comprising:

coupling the conductive pillar with a bit line based at least in part on activating a first transistor coupled with the conductive pillar and the bit line and activating a second transistor coupled with the first transistor and the bit line, wherein activating the first transistor and activating the second transistor comprises biasing, via a first gate line coupled with a gate of the first transistor, the gate of the first transistor to a second voltage and biasing, via a second gate line coupled with a gate of the second transistor, the gate of the second transistor to the second voltage, wherein the second voltage is greater than a first voltage; and

biasing the bit line to the first voltage based at least in part on coupling the conductive pillar with the bit line.

20. The memory system of claim 19 , wherein, to perform the access operation, the one or more controllers are further configured to cause the memory system to:

bias, via a third gate line coupled with a gate of a third transistor, the gate of the third transistor to a third voltage, wherein the third transistor is coupled with the bit line and a second conductive pillar coupled with a second memory cell; and

bias, via a fourth gate line coupled with a gate of a fourth transistor, the gate of the fourth transistor to a fourth voltage, wherein the fourth transistor is coupled with the third transistor and the bit line, and wherein the fourth voltage is less than the first voltage and the third voltage is less than the fourth voltage.

21. The memory system of claim 19 , wherein the one or more controllers are further configured to cause the memory system:

perform a second access operation for the memory cell, the second access operation comprising:

coupling the conductive pillar with the bit line based at least in part on biasing a gate of the first transistor to a second voltage and biasing a gate of the second transistor to the second voltage, wherein the second voltage is less than the first voltage; and

biasing, based at least in part on coupling the conductive pillar with the bit line, the bit line to a third voltage, wherein the third voltage is less than the second voltage.

22. The memory system of claim 19 , wherein the one or more controllers are further configured to cause the memory system to:

bias, outside of the access operation, a gate of the first transistor to a second voltage; and

bias, outside of the access operation, a gate of the second transistor to a third voltage, wherein the third voltage is less than the first voltage and the second voltage is less than the third voltage.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 5, 2022
From: BEDESCHI, FERDINANDO
To: MICRON TECHNOLOGY, INC.
Reel/Frame 059502/0491 →
Continuity (1)
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