Skyrmionics—Computing and memory technologies based on topological excitations in magnets
Hamed Vakili,Jun-Wen Xu,Wei Zhou,Mohammad Nazmus Sakib,Golam Morshed,Timothy Q. Hartnett,Yassine Quessab,Kai Litzius,Chung T. Ma,Samiran Ganguly,Mircea R. Stan,Prasanna V. Balachandran,Geoffrey S. D. Beach,S. Joseph Poon,Andrew D. Kent,Avik W. Ghosh +15 more
TL;DR: In this article, the authors discuss skyrmionics in the context of the present-day solid-state memory landscape and show how their size, stability, and mobility can be controlled by material engineering, as well as how they can be nucleated and detected.
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Abstract: Solitonic magnetic excitations such as domain walls and, specifically, skyrmionics enable the possibility of compact, high density, ultrafast, all-electronic, low-energy devices, which is the basis for the emerging area of skyrmionics. The topological winding of skyrmion spins affects their overall lifetime, energetics, and dynamical behavior. In this Perspective, we discuss skyrmionics in the context of the present-day solid-state memory landscape and show how their size, stability, and mobility can be controlled by material engineering, as well as how they can be nucleated and detected. Ferrimagnets near their compensation points are promising candidates for this application, leading to a detailed exploration of amorphous CoGd as well as the study of emergent materials such as Mn4N and inverse Heusler alloys. Along with material properties, geometrical parameters such as film thickness, defect density, and notches can be used to tune skyrmion properties, such as their size and stability. Topology, however, can be a double-edged sword, especially for isolated metastable skyrmions, as it brings stability at the cost of additional damping and deflective Magnus forces compared to domain walls. Skyrmion deformation in response to forces also makes them intrinsically slower than domain walls. We explore potential analog applications of skyrmions, including temporal memory at low density—one skyrmion per racetrack—that capitalizes on their near ballistic current–velocity relation to map temporal data to spatial data and decorrelators for stochastic computing at a higher density that capitalizes on their interactions. We summarize the main challenges of achieving a skyrmionics technology, including maintaining positional stability with very high accuracy and electrical readout, especially for small ferrimagnetic skyrmions, deterministic nucleation, and annihilation and overall integration with digital circuits with the associated circuit overhead.
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Citations
Statics and dynamics of skyrmions interacting with disorder and nanostructures
20 Sep 2022
TL;DR: A review of the current state-of-the-art regarding individual skyrmions and skyrmmion assemblies interacting with quenched disorder or pinning can be found in this article .
Zero-Field Nucleation and Fast Motion of Skyrmions Induced by Nanosecond Current Pulses in a Ferrimagnetic Thin Film.
TL;DR: In this paper , the current-induced nucleation and motion of skyrmions in ferrimagnetic Pt/CoGd/(W or Ta) thin films were investigated.
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Positional Stability of Skyrmions in a Racetrack Memory with Notched Geometry
09 Jun 2022
TL;DR: In this paper , the authors compute the energy barriers associated with stabilizing notches along a racetrack and derive quasi-analytical equations to estimate the energy barrier, and show that the reduction of skyrmion size as it squeezes past the notch gives rise to an energy barrier.
Fast current-induced skyrmion motion in synthetic antiferromagnets
Van Tuong Pham,Naveen Sisodia,Ilaria Di Manici,Joseba Urrestarazu-Larrañaga,Kaushik Bairagi,J. Pelloux-Prayer,Rodrigo Guedas,Liliana D. Buda-Prejbeanu,Stéphane Auffret,A. Locatelli,Tevfik Onur Menteş,S. Pizzini,Pawan Kumar,Aurore Finco,V. Jacques,Gilles Gaudin,Olivier Boulle +16 more
TL;DR: Fast current-induced skyrmion motion in synthetic antiferromagnets enables high-speed skyrmion-based logic and memory devices.
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