Delay dynamics of neuromorphic optoelectronic nanoscale resonators: Perspectives and applications

被引:32
|
作者
Romeira, Bruno [1 ,3 ]
Figueiredo, Jose M. L. [1 ,4 ]
Javaloyes, Julien [2 ]
机构
[1] Univ Algarve, Dept Fis, CEOT, Campus Gambelas, P-8005139 Faro, Portugal
[2] Univ Illes Balears, Dept Fis, C Valldemossa Km 7-5, Palma De Mallorca 07122, Spain
[3] Int Iberian Nanotechnol Lab INL, Av Mestre Jose Veiga, P-4715330 Braga, Portugal
[4] Univ Lisbon, Dept Fis, Fac Ciencias, P-1749016 Lisbon, Portugal
基金
欧盟地平线“2020”;
关键词
TUNNELING-DIODE; INTEGRATED-CIRCUIT; ARTIFICIAL NEURON; CAVITY SOLITONS; DATA-STORAGE; LASER; SPIKING; NETWORK; OSCILLATOR; SYSTEM;
D O I
10.1063/1.5008888
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
With the recent exponential growth of applications using artificial intelligence (AI), the development of efficient and ultrafast brain-like (neuromorphic) systems is crucial for future information and communication technologies. While the implementation of AI systems using computer algorithms of neural networks is emerging rapidly, scientists are just taking the very first steps in the development of the hardware elements of an artificial brain, specifically neuromorphic microchips. In this review article, we present the current state of the art of neuromorphic photonic circuits based on solid-state optoelectronic oscillators formed by nanoscale double barrier quantum well resonant tunneling diodes. We address, both experimentally and theoretically, the key dynamic properties of recently developed artificial solid-state neuron microchips with delayed perturbations and describe their role in the study of neural activity and regenerative memory. This review covers our recent research work on excitable and delay dynamic characteristics of both single and autaptic (delayed) artificial neurons including all-or-none response, spike-based data encoding, storage, signal regeneration and signal healing. Furthermore, the neural responses of these neuromorphic microchips display all the signatures of extended spatio-temporal localized structures (LSs) of light, which are reviewed here in detail. By taking advantage of the dissipative nature of LSs, we demonstrate potential applications in optical data reconfiguration and clock and timing at high-speeds and with short transients. The results reviewed in this article are a key enabler for the development of high-performance optoelectronic devices in future high-speed brain-inspired optical memories and neuromorphic computing. (C) 2017 Author(s).
引用
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页数:18
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