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Optically switchable transistor via energy-level phototuning in a bicomponent organic semiconductor

机译:通过双组分有机半导体中的能级光调谐进行光开关晶体管

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摘要

Organic semiconductors are suitable candidates for printable, flexible and large-area electronics. Alongside attaining an improved device performance, to confer a multifunctional nature to the employed materials is key for organic-based logic applications. Here we report on the engineering of an electronic structure in a semiconducting film by blending two molecular components, a photochromic diarylethene derivative and a poly(3-hexylthiophene) (P3HT) matrix, to attain phototunable and bistable energy levels for the P3HT's hole transport. As a proof-of-concept we exploited this blend as a semiconducting material in organic thin-film transistors. The device illumination at defined wavelengths enabled reversible tuning of the diarylethene's electronic states in the blend, which resulted in modulation of the output current. The device photoresponse was found to be in the microsecond range, and thus on a technologically relevant timescale. This modular blending approach allows for the convenient incorporation of various molecular components, which opens up perspectives on multifunctional devices and logic circuits.
机译:有机半导体是可印刷,柔性和大面积电子产品的合适候选者。除了获得改善的器件性能之外,为所使用的材料赋予多功能性也是基于有机逻辑应用的关键。在这里,我们通过混合光致变色二芳基乙烯衍生物和聚(3-己基噻吩)(P3HT)基质两个分子成分,以获得P3HT空穴传输的光可调和双稳态能级,来报道半导体膜中电子结构的工程化过程。作为概念验证,我们将这种混合物用作有机薄膜晶体管中的半导体材料。在规定的波长下进行设备照明可使混合物中二芳基乙烯的电子状态可逆调节,从而调节输出电流。发现设备的光响应在微秒范围内,因此在技术上相关的时间尺度上。这种模块化的混合方法可以方便地合并各种分子成分,这为多功能设备和逻辑电路开辟了前景。

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