Mimicking Neurotransmitter Release in Chemical Synapses <i>via</i> Hysteresis Engineering in MoS<sub>2</sub> Transistors
Имитация высвобождения нейромедиаторов в химических синапсах посредством управления гистерезисом в транзисторах на основе MoS₂
2017-03-04
SCID: 54.1/2xdvrbuk
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MoS2 field-effect transistorschemical synapseshysteresis engineeringlong-term potentiationneurotransmitter release
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Abstract (AI)
Neurotransmitter release in chemical synapses is fundamental to diverse brain functions such as motor action, learning, cognition, emotion, perception, and consciousness. Moreover, improper functioning or abnormal release of neurotransmitter is associated with numerous neurological disorders such as epilepsy, sclerosis, schizophrenia, Alzheimer’s disease, and Parkinson’s disease. We have utilized hysteresis engineering in a back-gated MoS 2 field effect transistor (FET) in order to mimic such neurotransmitter release dynamics in chemical synapses. All three essential features, i . e ., quantal, stochastic, and excitatory or inhibitory nature of neurotransmitter release, were accurately captured in our experimental demonstration. We also mimicked an important phenomenon called long-term potentiation (LTP), which forms the basis of human memory. Finally, we demonstrated how to engineer the LTP time by operating the MoS 2 FET in different regimes. Our findings could provide a critical component toward the design of next-generation smart and intelligent human-like machines and human–machine interfaces.
Key Findings
1
Hysteresis engineering in a back-gated MoS₂ FET mimics neurotransmitter-release dynamics of chemical synapses.
2
Operating the MoS₂ FET in different regimes enables engineering the duration of long-term potentiation.
3
The MoS₂ transistor also mimics long-term potentiation, a synaptic phenomenon underlying human memory.
4
The demonstrated functionality may support next-generation intelligent machines and human–machine interfaces.
5
The device experimentally reproduces quantal, stochastic, and excitatory or inhibitory characteristics of neurotransmitter release.
Research Object
Back-gated MoS2 field-effect transistors engineered for hysteresis
Research Subject
Mimicking chemical-synapse neurotransmitter-release dynamics—including quantal, stochastic, excitatory/inhibitory release and long-term potentiation, with tunable LTP time
Publication Details
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2017-03-04
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