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Mimic Drug Dosage Modulation for Neuroplasticity based on Charge-Trap Layered Electronics
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Mimic Drug Dosage Modulation for Neuroplasticity based on Charge-Trap Layered Electronics

Caifang Gao, Mu-Pai Lee, Mengjiao Li, Ko-Chun Lee, Feng-Shou Yang, Che-Yi Lin, Kenji Watanabe, Takashi Taniguchi, Po-Wen Chiu, Chen-Hsin Lien, …
Advanced Functional Materials, 卷.31(5), 2005182
11/2020
Web of Science ID: WOS:000588146000001

摘要

charge trapping;drug addiction;gate-dependent modulations;layered HfS2 synaptic device;neuroplasticity Chemistry (all) Materials Science (all) Condensed Matter Physics

The human brain is often likened to an incredibly complex and intricate computer, rather than electrical devices, consisting of billions of neuronal cells connected by synapses. Different brain circuits are responsible for coordinating and performing specific functions. The reward pathway of the synaptic plasticity in the brain is strongly related to the features of both drug addiction and relief. In the current study, a synaptic device based on layered hafnium disulfide (HfS 2 ) is developed for the first time, to emulate the behavioral mechanisms of drug dosage modulation for neuroplasticity. A strong gate-dependent persistent photocurrent is observed, arising from the modulation of substrate-trapping events. By controlling the polarity of gate voltage, the basic functions of biological synapses are realized under a range of light spiking conditions. Furthermore, under the control of detrapping/trapping events at the HfS 2 /SiO 2 interface, positive/negative correlations of the A n /A 1 index, which significantly reflected the weight change of synaptic plasticity, are realized under the same stimulation conditions for the emulation of the drug-related addition/relief behaviors in the brain. The findings provide a new advance for mimicking human brain plasticity.

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合作類型
機構合作
國際合作
引用書目主題
5 Physics
5.310 Resistive Switching
5.310.1164 Resistive Switching
Web Of Science研究領域
Chemistry, Multidisciplinary
Chemistry, Physical
Materials Science, Multidisciplinary
Nanoscience & Nanotechnology
Physics, Applied
Physics, Condensed Matter
ESI研究領域
Materials Science

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