| Literature DB >> 27669052 |
Zhongrui Wang1, Saumil Joshi1, Sergey E Savel'ev2, Hao Jiang1, Rivu Midya1, Peng Lin1, Miao Hu3, Ning Ge3, John Paul Strachan3, Zhiyong Li3, Qing Wu4, Mark Barnell4, Geng-Lin Li5, Huolin L Xin6, R Stanley Williams3, Qiangfei Xia1, J Joshua Yang1.
Abstract
The accumulation and extrusion of Ca2+ in the pre- and postsynaptic compartments play a critical role in initiating plastic changes in biological synapses. To emulate this fundamental process in electronic devices, we developed diffusive Ag-in-oxide memristors with a temporal response during and after stimulation similar to that of the synaptic Ca2+ dynamics. In situ high-resolution transmission electron microscopy and nanoparticle dynamics simulations both demonstrate that Ag atoms disperse under electrical bias and regroup spontaneously under zero bias because of interfacial energy minimization, closely resembling synaptic influx and extrusion of Ca2+, respectively. The diffusive memristor and its dynamics enable a direct emulation of both short- and long-term plasticity of biological synapses, representing an advance in hardware implementation of neuromorphic functionalities.Entities:
Year: 2016 PMID: 27669052 DOI: 10.1038/nmat4756
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841