System and method for applying a magnonic matrix-vector-multiplier arrangement
US-2020110433-A1 · Apr 9, 2020 · US
US2022392683A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2022392683-A1 |
| Application number | US-202217804550-A |
| Country | US |
| Kind code | A1 |
| Filing date | May 27, 2022 |
| Priority date | Jun 4, 2021 |
| Publication date | Dec 8, 2022 |
| Grant date | — |
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The disclosed technology relates to a logic device based on spin waves. In one aspect, the logic device includes a spin wave generator, a waveguide, at least two phase shifters, and an output port. The spin wave generator is connected with the waveguide and is configured to emit a spin wave in the waveguide. The at least two phase shifters are connected with the waveguide at separate positions such that, when a spin wave is emitted by the spin wave generator, it passes via the phase shifters. The at least two phase shifters are configured to change a phase of the passing spin wave. The output port is connected with the wave guide such that the at least two phase shifters are present between the spin wave generator and the output port.
Opening claim text (preview).
What is claimed is: 1 . A logic device based on spin waves, the logic device comprising: a spin wave generator, a waveguide, at least two phase shifters, and an output port, wherein the spin wave generator is connected with the waveguide and is configured to emit a spin wave in the waveguide, wherein the at least two phase shifters are connected with the waveguide at separate positions such that, when a spin wave is emitted by the spin wave generator, the spin wave passes via the at least two phase shifters, wherein the at least two phase shifters are configured to change a phase of the passing spin wave, and wherein the output port is connected with the waveguide such that the at least two phase shifters are present between the spin wave generator and the output port. 2 . The logic device according to claim 1 , wherein a phase shifter of the at least two phase shifters comprises an input port and is configured to change the phase of the passing spin wave by changing an internal magnetic field in the waveguide when a voltage is applied to the phase shifter. 3 . The logic device according to claim 1 , wherein one or more of the at least two phase shifters are configured to locally change a magnetic field in the waveguide. 4 . The logic device according to claim 3 , wherein one or more of the at least two phase shifters are based on a voltage controlled magnetic anisotropy effect. 5 . The logic device according to claim 3 , wherein one or more of the at least two phase shifters are based on a magnetoelectric effect. 6 . The logic device according to claim 1 , wherein the at least two phase shifters are configured to change the phase of the passing spin wave by an angle of π radians. 7 . The logic device according to claim 1 , wherein the spin wave generator is a magneto-electric cell configured to generate a spin wave by a spin torque effect. 8 . The logic device according to claim 7 , wherein the spin wave generator is a magnetic tunnel junction configured to generate a spin wave by a spin torque effect. 9 . The logic device according to claim 1 , the logic device comprising a spin wave detector connected with the output port. 10 . The logic device according to claim 9 , wherein the spin wave detector is a magneto-electric cell configured to detect spin waves. 11 . The logic device according to claim 10 , wherein the spin wave detector is a magnetic tunnel junction configured to detect spin waves by measuring a tunneling magneto-resistance. 12 . The logic device according to claim 1 , the device comprising exactly two phase shifters, the logic device forming a XOR gate. 13 . The logic device according to claim 1 , wherein the waveguide is magnetostrictive. 14 . A spintronic circuit comprising at least two logic devices, of which at least one is a logic device according to claim 1 , wherein an output at the output port of one logic device is combined with an output at the output port of another logic device. 15 . A spintronic circuit comprising at least two logic devices, of which at least one is a logic device according to claim 1 , wherein one logic device is used as a spin wave generator for another logic device. 16 . A toolbox for creating a spintronic circuit, the toolbox comprising a building block for creating a logic device according to claim 1 .
EXCLUSIVE-OR circuits, i.e. giving output if input signal exists at only one input; COINCIDENCE circuits, i.e. giving output only if all input signals are identical · CPC title
Phase-shifters (H01P1/165 takes precedence) · CPC title
Spin-exchange-coupled multilayers, e.g. nanostructured superlattices {(applying spin-exchange-coupled multilayers to substrates H01F41/302)} · CPC title
using galvano-magnetic devices, e.g. Hall-effect devices · CPC title
Majority or minority circuits, i.e. giving output having the state of the majority or the minority of the inputs · CPC title
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