| Literature DB >> 32500583 |
Ben Yang1, Yang Lu1, Donghan Jiang1, Zhenchao Li1, Yan Zeng2, Shen Zhang1, Yi Ye1, Zhen Liu1, Qingqing Ou1, Yan Wang1, Shilei Dai1, Yuanping Yi2, Jia Huang1,3.
Abstract
Inspired by the photosynthesis process of natural plants, multifunctional transistors based on natural biomaterial chlorophyll and organic semiconductors (OSCs) are reported. Functions as photodetectors (PDs) and light-stimulated synaptic transistors (LSSTs) can be switched by gate voltage. As PDs, the devices exhibit ultrahigh photoresponsivity up to 2 × 106 A W-1 , detectivity of 6 × 1015 Jones, and Iphoto /Idark ratio of 2.7 × 106 , which make them among the best reported organic PDs. As LSSTs, important synaptic functions similar to biological synapses are demonstrated, together with a dynamic learning and forgetting process and image-processing function. Significantly, benefiting from the ultrahigh photosensitivity of chlorophyll, the lowest operating voltage and energy consumption of the LSSTs can be 10-5 V and 0.25 fJ, respectively. The devices also exhibit high flexibility and long-term air stability. This work provides a new guide for developing organic electronics based on natural biomaterials.Entities:
Keywords: biomaterial devices; light-stimulated synaptic transistors; multifunctional devices; organic field-effect transistors; photodetectors
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Year: 2020 PMID: 32500583 DOI: 10.1002/adma.202001227
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849