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Photoinduced Tunable and Reconfigurable Electronic and Photonic Devices Using a Silk‐Based Diffractive Optics Platform

机译:使用基于丝绸的衍射光学平台进行光致可调谐和可重构电子和光子设备

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摘要

A remarkable feature of modern electronic and photonic devices is the ability to maintain their geometric and physical properties in various circumstances for practical applications. However, there is an increasing demand for reconfigurable devices and systems that can be triggered or switched by external stimuli to change geometric, physical, and/or biochemical properties to meet specific requirements such as compact, lightweight, energy‐efficient, and tunable features. Here, a set of phototunable and photoreconfigurable electronic and photonic devices composed of reconfigurable arithmetic circuits and programmable coding metamaterials at terahertz frequencies, empowered by a diffractive optics platform using naturally extracted silk proteins, is reported. These protein‐based diffract optics are precisely manufactured into special microstructures for phase modulation of incident light and can be programmed to degrade at controlled rates. This allows spatial and temporal transformation of the incident light into desired intensity profiles to modulate the electrical properties of multiple photosensitive elements/components within the device simultaneously or discretely. Thus, the optoelectronic functionality of fabricated devices can be tailored to specific applications. Therefore, the approach makes it possible to efficiently fabricate tunable, reconfigurable transient electronic and photonic devices and systems.
机译:现代电子和光子设备的显着特征是在实际应用中可以在各种情况下保持其几何和物理特性的能力。但是,对于可重新配置的设备和系统的需求不断增长,这些设备和系统可以通过外部刺激来触发或切换以改变几何,物理和/或生化特性,以满足诸如紧凑,轻便,节能和可调节功能等特定要求。在这里,报道了一组由可调谐算术电路和太赫兹频率下的可编程编码超材料组成的光可调和光可重构电子和光子器件,这些器件由衍射光学平台使用天然提取的丝蛋白实现。这些基于蛋白质的衍射光学器件被精确地制造成特殊的微结构,用于入射光的相位调制,并且可以编程为以受控的速率降解。这允许入射光在空间和时间上转换成期望的强度分布,以同时或离散地调节装置内的多个光敏元件/组件的电性能。因此,所制造的设备的光电功能可以适合于特定的应用。因此,该方法使得可以有效地制造可调谐的,可重构的瞬态电子和光子器件和系统。

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