Please use this identifier to cite or link to this item: http://dx.doi.org/10.25673/119441
Title: RC circuit based on magnetic skyrmions
Author(s): Ribeiro de Assis, Ismael
Mertig, IngridLook up in the Integrated Authority File of the German National Library
Göbel, BörgeLook up in the Integrated Authority File of the German National Library
Issue Date: 2025
Type: Article
Language: English
Abstract: Skyrmions are nanosized magnetic whirls attractive for spintronic applications due to their innate stability. They can emulate the characteristic behavior of various spintronic and electronic devices such as spin-torque nano-oscillators, artificial neurons and synapses, logic devices, diodes, and ratchets. Here, we show that skyrmions can emulate the physics of an 𝑅𝐶 circuit—the fundamental electric circuit composed of a resistor and a capacitor—on the nanosecond time scale. The equation of motion of a current-driven skyrmion in a quadratic energy landscape is mathematically equivalent to the differential equation characterizing an 𝑅𝐶 circuit: the applied current resembles the applied input voltage and the skyrmion position resembles the output voltage at the capacitor. These predictions are confirmed via micromagnetic simulations. We show that such a skyrmion system reproduces the characteristic exponential voltage decay upon charging and discharging the capacitor under constant input. Furthermore, it mimics the low-pass filter behavior of 𝑅𝐶 circuits by filtering high frequencies in periodic input signals. Since 𝑅𝐶 circuits are mathematically equivalent to the leaky-integrate-fire (LIF) model widely used to describe biological neurons, our device concept can also be regarded as a perfect artificial LIF neuron.
URI: https://opendata.uni-halle.de//handle/1981185920/121399
http://dx.doi.org/10.25673/119441
Open Access: Open access publication
License: (CC BY 4.0) Creative Commons Attribution 4.0(CC BY 4.0) Creative Commons Attribution 4.0
Journal Title: Physical review
Publisher: Inst.
Publisher Place: Woodbury, NY
Volume: 111
Issue: 17
Original Publication: 10.1103/PhysRevB.111.174429
Appears in Collections:Open Access Publikationen der MLU

Files in This Item:
File Description SizeFormat 
PhysRevB.111.174429.pdf4.49 MBAdobe PDFThumbnail
View/Open