IP Library › Granted Patent US 12,727,396
Granted Patent B2
US 12,727,396 · App. 17/394,544 · Granted Sep 1, 2026

Spike-timing-dependent plasticity using inverse resistivity phase-change material

Inventors: Guy M. Cohen (Ossining, NY); Takashi Ando (Eastchester, NY); Nanbo Gong (White Plains, NY)
Assignee: International Business Machines Corporation
H10N70/231G06N3/049G06N3/065G11C13/0004G11C13/004G11C13/0069H10N70/826H10N70/8413H10N70/8828G11C2013/0045
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Quick Facts
Patent No.
US 12,727,396
App. No.
17/394,544
Granted
Sep 1, 2026
Kind
B2
Abstract

A device for implementing spike-timing-dependent plasticity is provided. The device includes a phase-change element, first and second electrodes disposed respective first and second surfaces of the phase-change element. The phase-change element includes a phase-change material with an inverse resistivity characteristic. The first electrode includes a first heater element, and a first electrical insulating layer which electrically insulates the first resistive heater element from the first electrode and the phase-change element. The second electrode includes a second resistive heater element, and a second electrical insulating layer which electrically insulates the second resistive heater element from the second electrode and the phase-change element.

Claims (47)

1 . A device, comprising:

a phase-change element comprising phase-change material having an inverse resistivity characteristic;

a first electrode disposed on a first surface of the phase-change element, wherein the first electrode comprises a first resistive heater element, and a first electrical insulating layer which electrically insulates the first resistive heater element from the first electrode and the phase-change element; and

a second electrode disposed on a second surface of the phase-change element, wherein the second electrode comprises a second resistive heater element, and a second electrical insulating layer which electrically insulates the second resistive heater element from the second electrode and the phase-change element.

2 . The device of claim 1 , wherein the phase-change material comprises an alloy of chromium, germanium, and tellurium, which exhibits the inverse resistivity characteristic of having a resistive crystalline phase and a conductive amorphous phase.

3 . The device of claim 1 , wherein the phase-change material comprises a conductive amorphous phase which has a rate of crystallization that is a function of temperature.

4 . The device of claim 1 , wherein the first and second resistive heater elements comprise one of a tantalum nitride material and a hydrogen-doped carbon material.

5 . The device of claim 1 , wherein the first and second electrical insulating layers comprise one of an alloy of aluminum nitride and an alloy of boron nitride.

6 . The device of claim 1 , wherein the first and second surfaces of the phase-change element comprise opposite parallel surfaces of the phase-change element, wherein the first and second electrodes have a same geometric footprint and are disposed in alignment to each other on the opposite parallel surfaces of the phase-change element.

7 . The device of claim 1 , wherein the first and second surfaces of the phase-change element comprise opposite parallel surfaces of the phase-change element, wherein the first and second electrodes have a same geometric footprint and are disposed in alignment with a predefined offset to each other on the opposite parallel surfaces of the phase-change element.

8 . The device of claim 1 , wherein the first and second surfaces of the phase-change element are angled planar surfaces of the phase-change element.

9 . A device, comprising:

an inverse phase-change material element having a resistive crystalline phase and a conductive amorphous phase;

a first electrode disposed on a first surface of the inverse phase-change material element;

a second electrode disposed on a second surface of the inverse phase-change material element;

a first proximity heater embedded in the first electrode;

a second proximity heater embedded in the second electrode;

a first event pulse generator coupled to the first proximity heater; and

a second event pulse generator coupled to the second proximity heater;

wherein a time-dependent resistance of the inverse phase-change material element between the first and second electrodes is proportional to a time difference between first and second pulses generated by the respective first and second event pulse generators.

10 . The device of claim 9 , wherein a memory of the time difference as captured by the time-dependent resistance is tunable by changing a temperature of the inverse phase-change material element.

11 . The device of claim 9 , wherein the first and second event pulse generators comprise respective first and second sensor devices configured to sense a target event.

12 . The device of claim 9 , further comprising a correlation signal generator circuit which is configured to apply a read voltage to the first and second electrodes, to receive a read current which flows through the inverse phase-change material element between the first and second electrodes in response to the applied read voltage, and to determine a conductance state of the inverse phase-change material element based on the read current.

13 . The device of claim 9 , wherein the inverse phase-change material element has a rate of crystallization of the conductive amorphous phase which is a function of temperature.

14 . The device of claim 9 , wherein the inverse phase-change material element comprises an alloy of chromium, germanium, and tellurium.

15 . The device of claim 9 , wherein the first and second proximity heaters elements comprise one of a tantalum nitride material and a hydrogen-doped carbon material.

16 . The device of claim 9 , wherein:

the first electrode comprises a first electrical insulating layer which electrically insulates the first proximity heater from the first electrode and the inverse phase-change material element; and

the second electrode comprises a second electrical insulating layer which electrically insulates the second proximity heater from the second electrode and the inverse phase-change material element;

wherein the first and second electrical insulating layers comprise one of an alloy of aluminum nitride and an alloy of boron nitride.

17 . A system, comprising:

a neuromorphic system comprising an artificial neural network, wherein the artificial neural network comprises neuron devices, and an array of synaptic devices which connect the neuron devices;

wherein at least one neuron device comprises an inverse phase-change material device, wherein the inverse phase-change material device comprises:

a phase-change element comprising phase-change material having an inverse resistivity characteristic;

a first electrode disposed on a first surface of the phase-change element, wherein the first electrode comprises a first resistive heater element, and a first electrical insulating layer which electrically insulates the first resistive heater element from the first electrode and the phase-change element; and

a second electrode disposed on a second surface of the phase-change element, wherein the second electrode comprises a second resistive heater element, and a second electrical insulating layer which electrically insulates the second resistive heater element from the second electrode and the phase-change element.

18 . The system of claim 17 , wherein the inverse phase-change material device of the at least one neuron device comprises:

a first programing input terminal coupled to the first resistive heater element and configured to receive a first programming signal from a first synaptic device; and

a second programming input terminal coupled to the second resistive heater element and configured to receive a second programming signal from second synaptic device.

19 . The system of claim 18 , wherein the at least one neuron device further comprises:

a correlation signal generator circuit coupled to the first and second electrodes of the inverse phase-change material device, and configured to generate a correlation signal which is indicative of a correlation between first and second programming signals, which are applied to the first and second programming input terminals, based on a conductivity state of the phase-change element which results from the first and second programming signals being applied to the first and second programing input terminals;

wherein the correlation signal generator circuit is configured to apply a read voltage to the first and second electrodes of the inverse phase-change material device, to receive a read current which flows through the phase-change element between the first and second electrodes in response to the applied read voltage, and to determine a conductance state of the inverse phase-change material device based on the read current.

20 . The system of claim 17 , wherein:

the phase-change material comprises an alloy of chromium, germanium, and tellurium;

the phase-change material has a rate of crystallization of an amorphous phase which is a function of temperature;

the first and second resistive heater elements comprise one of a tantalum nitride material and a hydrogen-doped carbon material; and

the first and second electrical insulating layers comprises one of an alloy of aluminum nitride and an alloy of boron nitride.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 5, 2021
From: COHEN, GUY M.; ANDO, TAKASHI; GONG, NANBO
To: INTERNATIONAL BUSINESS MACHINES CORPORATION
Reel/Frame 057089/0165 →
Continuity (1)
Related Publication 20230040983A1 · Feb 9, 2023
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