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Coupling Cortical Neurons through Electronic Memristive Synapse
Author(s) -
Juzekaeva Elvira,
Nasretdinov Azat,
Battistoni Silvia,
Berzina Tatiana,
Iannotta Salvatore,
Khazipov Rustem,
Erokhin Victor,
Mukhtarov Marat
Publication year - 2019
Publication title -
advanced materials technologies
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.184
H-Index - 42
ISSN - 2365-709X
DOI - 10.1002/admt.201800350
Subject(s) - electrical synapses , coupling (piping) , excitatory postsynaptic potential , biological neural network , postsynaptic potential , neuroscience , synapse , neuron , computer science , topology (electrical circuits) , materials science , inhibitory postsynaptic potential , gap junction , biology , electrical engineering , receptor , engineering , biochemistry , intracellular , metallurgy , microbiology and biotechnology
Functional coupling live neurons through artificial synapses is the primary requirement for their implementation as prosthetic devices or in building hybrid networks. Here, the first evidence of unidirectional, activity dependent, coupling of two live neurons in brain slices via organic memristive devices (OMD) is demonstrated. ODM is a polymeric electrochemical element, which has two terminals for the connection in electrical circuits and which displays hysteresis and rectifying features. OMD coupling is characterized by nonlinear relationships determined by the instantaneous values of OMD resistance that can be controlled by the neuronal activity, and the excitation threshold in the postsynaptic neuron. OMD coupling also has the spike‐timing features similar to that of the natural excitatory synapses. Also, OMD‐synapses support synchronized delta‐oscillations in the two‐neuron network. It is proposed that OMD‐synapses may enable realization of prosthetic synapses and building hybrid neuronal networks endowed with a capacity of learning, memory, and computation.

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