| Literature DB >> 29665150 |
Jiadi Zhu1, Yuchao Yang1, Rundong Jia1, Zhongxin Liang1, Wen Zhu2, Zia Ur Rehman2, Lin Bao1, Xiaoxian Zhang3, Yimao Cai1, Li Song2, Ru Huang1.
Abstract
Neuromorphic computing represents an innovative technology that can perform intelligent and energy-efficient computation, whereas construction of neuromorphic systems requires biorealistic synaptic elements with rich dynamics that can be tuned based on a robust mechanism. Here, an ionic-gating-modulated synaptic transistor based on layered crystals of transitional metal dichalcogenides and phosphorus trichalcogenides is demonstrated, which produce a diversity of short-term and long-term plasticity including excitatory postsynaptic current, paired pulse facilitation, spiking-rate-dependent plasticity, dynamic filtering, etc., with remarkable linearity and ultralow energy consumption of ≈30 fJ per spike. Detailed transmission electron microscopy characterization and ab initio calculation reveal two-stage ionic gating effects, namely, surface adsorption and internal intercalation in the channel medium, causing different poststimulation diffusive dynamics and thus accounting for the observed short-term and long-term plasticity, respectively. The synaptic activity can therefore be effectively manipulated by tailoring the ionic gating and consequent diffusion dynamics with varied thickness and structure of the van der Waals material as well as the number, duration, rate, and polarity of gate stimulations, making the present synaptic transistors intriguing candidates for low-power neuromorphic systems.Entities:
Keywords: 2D van der Waals crystals; biorealistic synaptic plasticity; diffusive dynamics; ionic gating; neuromorphic computing
Year: 2018 PMID: 29665150 DOI: 10.1002/adma.201800195
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849