Leaky-Integrate-Fire Neuron via Synthetic Antiferromagnetic Coupling and Spin-Orbit Torque
Neuromorphic computing (NC) is a promising candidate for artificial intelligence applications. To realize NC, electronic analogues of brain components, such as synapses and neurons, must be designed. In spintronics, domain wall (DW) based magnetic tunnel junctions - which offer both synaptic and neu...
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Zusammenfassung: | Neuromorphic computing (NC) is a promising candidate for artificial
intelligence applications. To realize NC, electronic analogues of brain
components, such as synapses and neurons, must be designed. In spintronics,
domain wall (DW) based magnetic tunnel junctions - which offer both synaptic
and neuronal functionalities - are one of the promising candidates. An
electronic neuron should exhibit leaky-integrate-fire functions similar to
their biological counterparts. However, most experimental studies focused only
on the integrate-and-fire functions, overlooking the leaky function. Here, we
report on a domain wall neuron device that achieves integration using
spin-orbit torque-induced domain wall motion and a leaky function via synthetic
antiferromagnetic coupling. By fabricating Hall bar devices in a special
geometry, we could achieve these two functionalities. During the leaky process,
the maximum DW velocity achieved was 2500 {\mu}m/s. The proposed design
utilizes materials used in STT-MRAM fabrication and is compatible with CMOS
fabrication. Therefore, this neuron can be readily integrated into NC. |
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DOI: | 10.48550/arxiv.2408.08525 |