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Electrically tunable terahertz metamaterials with embedded large-area transparent thin-film transistor arrays

机译:具有嵌入式大面积透明薄膜晶体管阵列的电可调太赫兹超材料

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Engineering metamaterials with tunable resonances are of great importance for improving the functionality and flexibility of terahertz (THz) systems. An ongoing challenge in THz science and technology is to create large-area active metamaterials as building blocks to enable efficient and precise control of THz signals. Here, an active metamaterial device based on enhancement-mode transparent amorphous oxide thin-film transistor arrays for THz modulation is demonstrated. Analytical modelling based on full-wave techniques and multipole theory exhibits excellent consistent with the experimental observations and reveals that the intrinsic resonance mode at 0.75?THz is dominated by an electric response. The resonant behavior can be effectively tuned by controlling the channel conductivity through an external bias. Such metal/oxide thin-film transistor based controllable metamaterials are energy saving, low cost, large area and ready for mass-production, which are expected to be widely used in future THz imaging, sensing, communications and other applications.
机译:具有可调谐共振的工程超材料对于改善太赫兹(THz)系统的功能和灵活性至关重要。太赫兹科学技术的一项持续挑战是创建大面积的活性超材料作为构建基块,以实现对太赫兹信号的高效和精确控制。在此,说明基于用于THz调制的增强型透明非晶氧化物薄膜晶体管阵列的有源超材料器件。基于全波技术和多极理论的分析模型与实验观察结果具有极好的一致性,并且揭示了在0.75?THz时的固有共振模式主要由电响应决定。可以通过外部偏置控制沟道电导率来有效地调节谐振性能。这种基于金属/氧化物薄膜晶体管的可控超材料是节能的,低成本的,大面积的并且已经准备好批量生产,预计将被广泛地用于未来的太赫兹成像,感测,通信和其他应用中。

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