Mimicking Neuroplasticity in a Hybrid Biopolymer Transistor by Dual Modes Modulation
Research output: Journal Publications and Reviews (RGC: 21, 22, 62) › 21_Publication in refereed journal › peer-review
Author(s)
Related Research Unit(s)
Detail(s)
Original language | English |
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Article number | 1902374 |
Journal / Publication | Advanced Functional Materials |
Volume | 29 |
Issue number | 31 |
Online published | 9 May 2019 |
Publication status | Published - 1 Aug 2019 |
Link(s)
Abstract
Neuromorphic computing systems that are capable of parallel information storage and processing with high area and energy efficiencies, offer important opportunities for future storage systems and in-memory computing. Here, it is shown that a carbon dots/silk protein (CDs/silk) blend can be used as a light-tunable charge trapping medium to fabricate an electro-photoactive transistor synapse. The synaptic device can be optically operated in volatile or nonvolatile modes, ensuring concomitant short-term and long-term neuroplasticity. The synaptic-like behaviors are attributed to the photogating effect induced by trapped photogenerated electrons in the hybrid CDs/silk film which is confirmed with atomic force microscopy based electrical techniques. In addition, system-level pattern recognition capability of the synaptic device is evaluated by a single-layer perceptron model. The remote optical operation of neuromorphic architecture provides promising building blocks to complete bioinspired photonic computing paradigms.
Research Area(s)
- biopolymer, charge trapping, hybrid transistor, synaptic plasticity, volatile
Citation Format(s)
Mimicking Neuroplasticity in a Hybrid Biopolymer Transistor by Dual Modes Modulation. / Lv, Ziyu; Chen, Meng; Qian, Fangsheng et al.
In: Advanced Functional Materials, Vol. 29, No. 31, 1902374, 01.08.2019.
In: Advanced Functional Materials, Vol. 29, No. 31, 1902374, 01.08.2019.
Research output: Journal Publications and Reviews (RGC: 21, 22, 62) › 21_Publication in refereed journal › peer-review