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Scalable-Production, Self-Powered TiO2 Nanowell-Organic Hybrid UV Photodetectors with Tunable Performances

机译:具有可调节性能的可量产,自供电的TiO2纳米孔有机混合紫外光电探测器

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Hybrid inorganic-organic photoelectric devices draw considerable attention because of their unique features by combining the tunable functionality of organic molecules and the superior intrinsic carrier mobilities of inorganic semiconductors. An ordered thin layer of TiO2 nanowells is formed in situ with shallow nanoconcave patterns without cracking with scalable production by a facile and economic strategy, and these layers are used as building blocks to construct hybrid DV photodetectors (PDs). Organic conducting polymers (polyaniline (PANI) with various morphologies) have been exploited as p-type materials, enabling tunable photodetection performances at zero bias. The thin layer of n-type TiO2 nanowells is favorable for electron transport and light absorption with respect to their conventional nanotubular counterparts, while PANI acts as a hopping state or bridge to largely enhance the transition probability of the valence electrons in TiO2 to its conduction band, resulting in an increase in photocurrent in a self-powered mode. In particular, the lowest polyaniline loading sample (TP1) exhibits the highest responsivity (3.6 mA.W-1), largest on off switching ratio (similar to 10(3)), excellent wavelength selectivity, fast response speed (3.8/30.7 ms), and good stability under 320 nm light illumination (0.56 mW.cm(-2)) without an external energy supply. This work might be of great value in developing tunable DV photoresponse materials with respect to low cost and a large area for future energy-efficient optoelectronic devices.
机译:混合无机-有机光电器件由于具有独特的功能,因此将有机分子的可调功能与无机半导体的优异固有载流子迁移率相结合,因此备受关注。 TiO2纳米井的有序薄层以浅纳米凹形图案就地形成,并且通过简便且经济的策略而不会因可扩展的生产而破裂,并且这些层用作构建混合DV光电探测器(PD)的基础。有机导电聚合物(具有各种形态的聚苯胺(PANI))已被用作p型材料,可实现零偏压下的可调光检测性能。与传统的纳米管对应物相比,n型TiO2纳米孔的薄层有利于电子传输和光吸收,而PANI充当跳变状态或桥,大大提高了TiO2中价电子向其导带的跃迁几率,导致自供电模式下的光电流增加。特别是,最低的聚苯胺负载样品(TP1)表现出最高的响应度(3.6 mA.W-1),最大的开/关比(类似于10(3)),出色的波长选择性,快速的响应速度(3.8 / 30.7 ms) ),并且在没有外部能量供应的情况下在320 nm光照(0.56 mW.cm(-2))下具有良好的稳定性。这项工作在开发可调谐DV光响应材料方面可能具有重要的价值,因为它具有低成本和大面积生产未来节能型光电器件的优点。

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