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Voltage-controlled skyrmion-based nanodevices for neuromorphic computing using a synthetic antiferromagnet.


ABSTRACT: Spintronics exhibits significant potential for a neuromorphic computing system with high speed, high integration density, and low dissipation. In this article, we propose an ultralow-dissipation skyrmion-based nanodevice composed of a synthetic antiferromagnet (SAF) and a piezoelectric substrate for neuromorphic computing. Skyrmions/skyrmion bubbles can be generated in the upper layer of an SAF with a weak anisotropy energy (E a). Applying a weak electric field on the heterostructure, interlayer antiferromagnetic coupling can be manipulated, giving rise to a continuous transition between a large skyrmion bubble and a small skyrmion. This thus induces a variation of the resistance of a magnetic tunneling junction that can mimic the potentiation/depression of a synapse and the leaky-integral-and-fire function of a neuron at a cost of a very low energy consumption of 0.3 fJ. These results pave a way to ultralow power neuromorphic computing applications.

SUBMITTER: Yu Z 

PROVIDER: S-EPMC9419653 | biostudies-literature | 2020 Mar

REPOSITORIES: biostudies-literature

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Voltage-controlled skyrmion-based nanodevices for neuromorphic computing using a synthetic antiferromagnet.

Yu Ziyang Z   Shen Maokang M   Zeng Zhongming Z   Liang Shiheng S   Liu Yong Y   Chen Ming M   Zhang Zhenhua Z   Lu Zhihong Z   You Long L   Yang Xiaofei X   Zhang Yue Y   Xiong Rui R  

Nanoscale advances 20200207 3


Spintronics exhibits significant potential for a neuromorphic computing system with high speed, high integration density, and low dissipation. In this article, we propose an ultralow-dissipation skyrmion-based nanodevice composed of a synthetic antiferromagnet (SAF) and a piezoelectric substrate for neuromorphic computing. Skyrmions/skyrmion bubbles can be generated in the upper layer of an SAF with a weak anisotropy energy (<i>E</i> <sub>a</sub>). Applying a weak electric field on the heterostr  ...[more]

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