Publication | Closed Access
A Flexible and Biomimetic Olfactory Synapse with Gasotransmitter‐Mediated Plasticity
57
Citations
76
References
2023
Year
EngineeringSynaptic TransmissionNeurotransmissionSensory SystemsSynaptic SignalingAbstract Neuromorphic ElectronicsChemical EngineeringElectronic DevicesBiosensing SystemsBiomedical DevicesNanosensorH 2Hybrid MaterialsPorous SensorBiophysicsMedicineNervous SystemOlfactionSynaptic PlasticityBiomedical SensorsBiomimetic Olfactory SynapseElectronic MaterialsBiomedical DiagnosticsBioelectronicsNeuroscienceSynaptic DysfunctionDesirable SelectivityFunctional Materials
Abstract Neuromorphic electronics has demonstrated great promise in mimicking the sensory and memory functions of biological systems. However, synaptic devices with desirable sensitivity, selectivity, and operational voltage imitating the olfactory system have rarely been reported. Here, a flexible and biomimetic olfactory synapse based on an organic electrochemical transistor (OECT) coupled with a breath‐figure derived porous solid polymer electrolyte (SPE) is proposed. The device demonstrates excellent sensitivity with a ppb‐level response limit and desirable selectivity toward hydrogen sulfide (H 2 S) over other gases, and successfully achieves wireless real‐time detection of excessive concentration of H 2 S from rotten eggs. H 2 S‐mediated synaptic plasticity is accomplished with the device and typical synaptic behaviors are realized, including short‐term memory (STM), long‐term memory (LTM), transition from STM to LTM, etc., enabling the imitation of potential cumulative damages upon H 2 S exposure. The proposed device paves new ways toward next‐generation olfactory systems capable of sensing and memorizing functionalities mimicking neurobiological systems, offering critical materials strategies to accomplish intelligent artificial sensory systems.
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