Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Skyrmion based majority logic gate by voltage controlled magnetic anisotropy in a nanomagnetic device

View through CrossRef
Abstract Magnetic skyrmions are topologically protected spin textures and they are suitable for future logic-in-memory applications for energy-efficient, high-speed information processing and computing technologies. In this work, we have demonstrated skyrmion-based 3 bit majority logic gate using micromagnetic simulations. The skyrmion motion is controlled by introducing a gate that works on voltage controlled magnetic anisotropy. Here, the inhomogeneous magnetic anisotropy behaves as a tunable potential barrier/well that modulates the skyrmion trajectory in the structure for the successful implementation of the majority logic gate. In addition, several other effects such as skyrmion–skyrmion topological repulsion, skyrmion-edge repulsion, spin–orbit torque and skyrmion Hall effect have been shown to govern the logic functionalities. We have systematically presented the robust logic operations by varying the current density, magnetic anisotropy, voltage-controlled gate dimension and geometrical parameters of the logic device. The skyrmion Hall angle is monitored to understand the trajectory and stability of the skyrmion as a function of time in the logic device. The results demonstrate a novel method to achieve majority logic by using voltage controlled magnetic anisotropy which further opens up a new route for skyrmion-based low-power and high-speed computing devices.
Title: Skyrmion based majority logic gate by voltage controlled magnetic anisotropy in a nanomagnetic device
Description:
Abstract Magnetic skyrmions are topologically protected spin textures and they are suitable for future logic-in-memory applications for energy-efficient, high-speed information processing and computing technologies.
In this work, we have demonstrated skyrmion-based 3 bit majority logic gate using micromagnetic simulations.
The skyrmion motion is controlled by introducing a gate that works on voltage controlled magnetic anisotropy.
Here, the inhomogeneous magnetic anisotropy behaves as a tunable potential barrier/well that modulates the skyrmion trajectory in the structure for the successful implementation of the majority logic gate.
In addition, several other effects such as skyrmion–skyrmion topological repulsion, skyrmion-edge repulsion, spin–orbit torque and skyrmion Hall effect have been shown to govern the logic functionalities.
We have systematically presented the robust logic operations by varying the current density, magnetic anisotropy, voltage-controlled gate dimension and geometrical parameters of the logic device.
The skyrmion Hall angle is monitored to understand the trajectory and stability of the skyrmion as a function of time in the logic device.
The results demonstrate a novel method to achieve majority logic by using voltage controlled magnetic anisotropy which further opens up a new route for skyrmion-based low-power and high-speed computing devices.

Related Results

Skyrmions in magnetic thin film heterostructures
Skyrmions in magnetic thin film heterostructures
Magnetic skyrmion is expected to function as an ideal information carrier for ultra-high density magnetic storage and logic functional device in the future due to its superior prop...
Notched Gate and Graded Gate Oxide Processing for Reduced Capacitance Application in RF MOSFETs
Notched Gate and Graded Gate Oxide Processing for Reduced Capacitance Application in RF MOSFETs
As the demands of RF applications are rising, optimization of internal MOSFETs capacitances is a key issue to improve the cut-off frequency. In this abstract we report the developm...
Skyrmion battery effect via inhomogeneous magnetic anisotropy
Skyrmion battery effect via inhomogeneous magnetic anisotropy
Magnetic skyrmions are considered a promising candidate for the next-generation information processing technology. Being topologically robust, magnetic skyrmions are swirling spin ...
Magnetic Skyrmion Deformation Driven by High-frequency Dynamic Perpendicular Magnetic Anisotropy Variation in a Confined Nanostructure
Magnetic Skyrmion Deformation Driven by High-frequency Dynamic Perpendicular Magnetic Anisotropy Variation in a Confined Nanostructure
Skyrmion-based nano-oscillators and race-track memory are two examples of contemporary spintronic-based device technologies that show promise due to magnetic skyrmions. Specificall...
Dzyaloshinskii-Moriya Interactions of Skyrmions for Memory and Logic Devices
Dzyaloshinskii-Moriya Interactions of Skyrmions for Memory and Logic Devices
A skyrmion is considered to be a swirling quasi-particle that can exhibit nano-size disturbances similar to those by a knot of twisting magnetic field lines. The "tangles" observed...
Investigation of the Gate Degradation Induced by Forward Gate Voltage Stress in p-GaN Gate High Electron Mobility Transistors
Investigation of the Gate Degradation Induced by Forward Gate Voltage Stress in p-GaN Gate High Electron Mobility Transistors
In this work, we investigated the degradation of the p-GaN gate stack induced by the forward gate voltage stress in normally off AlGaN/GaN high electron mobility transistors (HEMTs...
Artificial skyrmion in magnetic multilayers
Artificial skyrmion in magnetic multilayers
A magnetic skyrmion is a promising candidate for information carrier in future logic functional devices, ultra-density storage devices, and neuromorphic computing. The presence of ...
Skyrmion crystals in layered systems with a fourfold screw axis
Skyrmion crystals in layered systems with a fourfold screw axis
We study magnetic phase transitions and skyrmion crystal formation in a layered square-lattice spin system with a fourfold screw axis under a magnetic field.The screw symmetry indu...

Back to Top