
Open access
Date
2020Type
- Journal Article
Citations
Cited 46 times in
Web of Science
Cited 53 times in
Scopus
ETH Bibliography
yes
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Abstract
Brain function relies on circuits of spiking neurons with synapses playing the key role of merging transmission with memory storage and processing. Electronics has made important advances to emulate neurons and synapses and brain-computer interfacing concepts that interlink brain and brain-inspired devices are beginning to materialise. We report on memristive links between brain and silicon spiking neurons that emulate transmission and plasticity properties of real synapses. A memristor paired with a metal-thin film titanium oxide microelectrode connects a silicon neuron to a neuron of the rat hippocampus. Memristive plasticity accounts for modulation of connection strength, while transmission is mediated by weighted stimuli through the thin film oxide leading to responses that resemble excitatory postsynaptic potentials. The reverse brain-to-silicon link is established through a microelectrode-memristor pair. On these bases, we demonstrate a three-neuron brain-silicon network where memristive synapses undergo long-term potentiation or depression driven by neuronal firing rates. Show more
Permanent link
https://doi.org/10.3929/ethz-b-000420225Publication status
publishedExternal links
Journal / series
Scientific ReportsVolume
Pages / Article No.
Publisher
Nature Publishing GroupOrganisational unit
09699 - Indiveri, Giacomo / Indiveri, Giacomo
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Citations
Cited 46 times in
Web of Science
Cited 53 times in
Scopus
ETH Bibliography
yes
Altmetrics