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A spintronic Huxley-Hodgkin-analogue neuron implemented with a single magnetic tunnel junction

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arxiv 2304.06343 v1 pith:222ZNIC2 submitted 2023-04-13 cond-mat.mes-hall

A spintronic Huxley-Hodgkin-analogue neuron implemented with a single magnetic tunnel junction

classification cond-mat.mes-hall
keywords networksneuralspikingemulatemagneticneurontunnelcost
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Spiking neural networks aim to emulate the brain's properties to achieve similar parallelism and high-processing power. A caveat of these neural networks is the high computational cost to emulate, while current proposals for analogue implementations are energy inefficient and not scalable. We propose a device based on a single magnetic tunnel junction to perform neuron firing for spiking neural networks without the need of any resetting procedure. We leverage two physics, magnetism and thermal effects, to obtain a bio-realistic spiking behavior analogous to the Huxley-Hodgkin model of the neuron. The device is also able to emulate the simpler Leaky-Integrate and Fire model. Numerical simulations using experimental-based parameters demonstrate firing frequency in the MHz to GHz range under constant input at room temperature. The compactness, scalability, low cost, CMOS-compatibility, and power efficiency of magnetic tunnel junctions advocate for their broad use in hardware implementations of spiking neural networks.

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