Publication | Closed Access
Binary Electronic Synapses for Integrating Digital and Neuromorphic Computation in a Single Physical Platform
12
Citations
33
References
2020
Year
EngineeringEmerging Memory TechnologyComputer ArchitectureIntegrating DigitalNeurochipElectronic DevicesUnconventional ComputingComputing SystemsMemory DeviceMemory DevicesNeuromorphic EngineeringNeuromorphic DevicesBiophysicsNeurocomputersElectrical EngineeringSingle Physical PlatformElectronic MemoryComputer EngineeringBinary Electronic SynapseDigital ComputationNeuromorphic ComputingComputer ScienceBinary Electronic SynapsesSynaptic PlasticityComputational NeuroscienceBrain-like ComputingMedicineMemristive Layer
As a promising advanced computation technology, the integration of digital computation with neuromorphic computation into a single physical platform holds the advantage of a precise, deterministic, fast data process as well as the advantage of a flexible, paralleled, fault-tolerant data process. Even though two-terminal memristive devices have been respectively proved as leading electronic elements for digital computation and neuromorphic computation, it is difficult to steadily maintain both sudden-state-change and gradual-state-change in a single device due to the entirely different operating mechanisms. In this work, we developed a digital–analog compatible memristive device, namely, binary electronic synapse, through realizing controllable cation drift in a memristive layer. The devices feature nonvolatile binary memory as well as artificial neuromorphic plasticity with high operation endurance. With strong nonlinearity in switching dynamics, binary switching, neuromorphic plasticity, two-dimension information store, and trainable memory can be implemented by a single device.
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