IP Library › Granted Patent US 11,183,240
Granted Patent B2
US 11,183,240 · App. 17/158,731 · Granted Nov 23, 2021

Programmable resistive memory element and a method of making the same

Inventors: Viorel-Georgel Dumitru (Ploiesti, RO); Cristina Besleaga Stan (Bucharest, RO); Alin Velea (Bucharest, RO); Aurelian-Catalin Galca (Magurele, RO)
Assignee: CYBERSWARM, INC
G11C13/0069G11C11/5685G11C13/004G11C13/0007G11C13/0038
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Quick Facts
Patent No.
US 11,183,240
App. No.
17/158,731
Granted
Nov 23, 2021
Kind
B2
Abstract

A programmable resistive memory element and a method of adjusting a resistance of a programmable resistive memory element are provided. The programmable resistive memory element includes at least one resistive memory element. Each resistive memory element includes an Indium-Gallium-Zinc-Oxide (IGZO) resistive layer, a first electrical contact and a second electrical contact. The first and second electrical contacts are disposed on the IGZO resistive layer in the same plane. The programmable resistive memory element includes a voltage generator coupled to the first and second electrical contacts, constructed and arranged to apply a thermal treatment to the resistive memory element to adjust a resistance of the resistive memory element.

Claims (24)

1. A programmable resistive memory element with multiple resistance states, comprising:

an Indium-Gallium-Zinc-Oxide (IGZO) resistive layer;

a first electrical contact and a second electrical contact disposed on the IGZO resistive layer in a same plane; and

a voltage generator coupled to the first and second electrical contacts, constructed and arranged to apply a thermal treatment to the resistive memory element to adjust a resistance of the resistive memory element based on a desired resistance state for the IGZO resistor layer.

2. The programmable resistive memory element of claim 1 , wherein the thermal treatment is performed by applying one or more voltage sweeps to the IGZO resistive layer with an upper voltage limit.

3. The programmable resistive memory element of claim 2 , wherein the upper voltage limit is set within a range between a few volts to a few tens of volts.

4. The programmable resistive memory element of claim 2 , wherein the upper voltage limit of the voltage sweep is set based on the desired resistance state for the IGZO resistive layer.

5. The programmable resistive memory element of claim 1 , wherein the resistive memory element operates as a read-only programmable memory after the element resistance is adjusted from a lower resistance state to one or more higher resistance states by applying the on-chip thermal treatment of the resistive memory element, thereby making its resistance irreversible.

6. The programmable resistive memory element of claim 4 , wherein a current flowing through the IGZO resistive layer biased with a low voltage is measured to read a resistance value associated with each of a plurality of higher resistance states of the resistive memory element.

7. The programmable resistive memory element of claim 1 , wherein the first electrical contact and the second electrical contact are apart from each other.

8. The programmable resistive memory element of claim 1 , wherein the first and second electrical contacts are made of at least one of Ti/Au, Al, Mo, indium tin oxide (ITO), aluminum zinc oxide (AZO), or any combination thereof.

9. The programmable resistive memory element of claim 2 , further comprising a dielectric layer disposed between the IGZO resistive layer and a substrate.

10. The programmable resistive memory element of claim 9 , wherein the dielectric layer is made of at least one of SiO2, Al2O3, AlN, or any combination thereof.

11. A method of adjusting a resistance of a programmable resistive memory element, including an Indium-Gallium-Zinc-Oxide (IGZO) resistive layer and a first electrical contact and a second electrical contact on the IGZO resistive layer in a same plane, the method comprising:

applying an on-chip thermal treatment to the resistive memory element to adjust a resistance of the resistive memory element based on desired resistance states for the IGZO resistor layer from a first resistance state to a second resistance state, the second resistance state being higher than the first resistance state.

12. The method of claim 11 , wherein applying the on-chip thermal treatment to the element further comprises applying one or more voltage sweeps to the IGZO resistive layer with an upper voltage limit.

13. The method of claim 11 , further comprising setting the one or more voltage sweeps within a range between few volts to few tens of volts.

14. The method of claim 12 , wherein the upper voltage limit of the voltage sweep is set based on the desired resistance state for the IGZO resistive layer.

15. The method of claim 11 , wherein the on-chip thermal treatment adjusts the resistive memory element from a lower resistance state to any of a plurality of higher resistance states, thereby making the element resistance irreversible.

16. The method of claim 14 , further comprising measuring a current flowing through the IGZO resistive layer biased with a low voltage to read a resistance value associated with each of the plurality of higher states of the resistive memory element.

17. The method of claim 11 , wherein the first electrical contact and the second electrical contact are apart from each other.

18. The method of claim 11 , wherein the first and second electrical contacts are made of at least one of Ti/Au, Al, Mo, indium tin oxide (ITO), aluminum zinc oxide (AZO), or any combination thereof.

19. The method of claim 12 , further comprising providing a dielectric layer disposed between the IGZO resistive layer and a substrate.

20. The method of claim 19 , wherein the dielectric layer is made of at least one of SiO2, Al2O3, AlN, or any combination thereof.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 19, 2021
From: DUMITRU, VIOREL-GEORGEL; BESLEAGASTAN, CRISTINA; VELEA, ALIN; GALCA, AURELIAN-CATALIN
To: CYBERSWARM, INC.
Reel/Frame 055653/0017 →
Continuity (3)
Continuation 16431290 · Jun 4, 2019
Provisional Application 62683341 · Jun 11, 2018
Related Publication 20210151108A1 · May 20, 2021
Cited By (1)
US 12,437,809