Selective Release of Different Neurotransmitters Emulated by a p–i–n Junction Synaptic Transistor for Environment‐Responsive Action Control

材料科学 神经传递 晶体管 长时程增强 神经递质 神经科学 纳米技术 光电子学 生物物理学 受体 电气工程 化学 生物 电压 工程类 生物化学 中枢神经系统
作者
Shuo Zhang,Kexin Guo,Lin Sun,Yao Ni,Lu Liu,Wenlong Xu,Lu Yang,Wentao Xu
出处
期刊:Advanced Materials [Wiley]
卷期号:33 (10) 被引量:84
标识
DOI:10.1002/adma.202007350
摘要

Abstract The design of the first p–i–n junction synaptic transistor (JST) based on n‐type TiO 2 film covered with poly(methyl methacrylate) (PMMA) and with a p‐type P3HT/PEO nanowire (NW) on top. Except for basic synaptic functions that can be realized by a single neurotransmitter, the electronic device emulates the multiplexed neurotransmission of different neurotransmissions, i.e., glutamate and acetylcholine, for fast switching between short‐ and long‐term plasticity (STP and LTP). This is realized by the special p–i–n junction with hole transport in the p‐type P3HT NW to form STP, and electron transport in the n‐type TiO 2 layer and trapped under the PMMA inversion layer to form LTP. Altering the external input induces changes of the polarity of the charge carriers in the conductive channel, promoting fast switching between STP and LTP modes. When stimulated using two parallel inputs, the response of PMMA/TiO 2 emulates the synergistic effect of taste and aroma on the control of food‐intake in the brain. Because of the bipolarity, the p–i–n JST has excellent reconfigurability, which importantly is attributed to simulate the plasticity of synapses and to mimic how distinct types of gustatory receptor neurons respond to different concentrations of salt. The electronic device lays the technical foundation for the realization of the future complex artificial neural networks.
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