| Literature DB >> 27506159 |
Dhritiman Bhattacharya1, Md Mamun Al-Rashid1,2, Jayasimha Atulasimha1,2.
Abstract
Using micromagnetic simulations we demonstrate core reversal of a fixed magnetic skyrmion by modulating the perpendicular magnetic anisotropy of a nanomagnet with an electric field. We can switch reversibly between two skyrmion states and two ferromagnetic states, i.e. skyrmion states with the magnetization of the core pointing down/up and periphery pointing up/down, and ferromagnetic states with magnetization pointing up/down, by sequential increase and decrease of the perpendicular magnetic anisotropy. The switching between these states is explained by the fact that the spin texture corresponding to each of these stable states minimizes the sum of the magnetic anisotropy, demagnetization, Dzyaloshinskii-Moriya interaction (DMI) and exchange energies. This could lead to the possibility of energy efficient nanomagnetic memory and logic devices implemented with fixed skyrmions without using a magnetic field and without moving skyrmions with a current.Entities:
Year: 2016 PMID: 27506159 PMCID: PMC4978972 DOI: 10.1038/srep31272
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) Skyrmion (b) MTJ structure (variants of the readout schemes in the supplement).
Figure 2(a) Anisotropy energy density and voltage vs time, we considered the rise time and fall time of the electric field to be 100 ps (to charge the capacitive MgO layer). This is typically idealized as a trapezoidal shaped voltage pulse with a dwell time between the rise and fall. However, a tent like (triangular) positive pulse is used to show that skyrmion-ferromagnetic transition can occur as fast as 0.2 ns. In other words, we can immediately remove the electric field once it reaches peak value. We could also use a usual symmetrical trapezoidal shaped positive pulse without affecting the switching physics. (b) Energies of different magnetic states at corresponding discrete point in time during the switching process (connecting lines between two points are for ease of visualization and do not represent actual energies as a function of time between these points), (c) spin states at different time and associated magnetization component in the z-direction of different points along the diameter, (d) Different magnetic sates during the reversal of a skyrmion with upward core.
Figure 3Normalized perpendicular magnetization (mz) vs. PMA.
Typical parameters of CoFeB layer used in our simulations.
| Parameters | Value |
|---|---|
| Saturation Magnetization (Ms) | 1 × 106 A/m |
| Exchange Constant (A) | 2 × 10−11 J/m |
| Perpendicular Anisotropy Constant (Ku) | 8 × 105 J/m3 |
| Gilbert Damping ( | 0.03 |
| DMI Parameter (D) | 3 mJ/m2 |