Supercapacitively Liquid-Solid Dual-State Optoelectronics.

Guo, Qianying; Ji, Daizong; Wang, Qiankun; Peng, Lan; Zhang, Cong; Wu, Yungen; Kong, Derong; Luo, Shi et al. · Adv Mater · 2024

basic_science · Level V

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Abstract

Photo-transduction of solid-state optoelectronics occurs in semiconductors or their interfaces. Considering the confined active area and interfacial capacitance of solid-state materials, solid-state optoelectronics faces inherent limitations in photo-transduction, especially for bionic vision, and the performance is lower than that of living systems. For example, a photoreceptor generates pA-level photocurrent when absorbing a single photon. Here, a liquid-solid dual-state phototransistor is demonstrated, in which photo-transduction and modulation take place at the microporous interface between semiconductors and water, mimicking principles of the photoreceptor. When operating in the water, an orderly stacked photo-harvesting covalent organic framework layer generates supercapacitively photogating modulation of the channel conductivity via a dual-state interface, achieving responsivity of 4.6 × 10<sup>10</sup> A W<sup>-1</sup> and detectivity of 1.62 × 10<sup>16</sup> Jones at room temperature, several orders of magnitude higher than other photodetectors. Such bio-inspired dual-state optoelectronics enables high-contrast scotopic neuromorphic imaging with responsivity greater than photoreceptors, holding promise for constructing optoelectronic systems with performance beyond conventional solid-state optoelectronics.