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Ultrafast frequency-agile terahertz devices using methylammonium lead halide perovskites

机译:使用甲基铵卤化铅钙钛矿的超快频率捷变太赫兹器件

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摘要

The ability to control the response of metamaterial structures can facilitate the development of new terahertz devices, with applications in spectroscopy and communications. We demonstrate ultrafast frequency-agile terahertz metamaterial devices that enable such a capability, in which multiple perovskites can be patterned in each unit cell with micrometer-scale precision. To accomplish this, we developed a fabrication technique that shields already deposited perovskites from organic solvents, allowing for multiple perovskites to be patterned in close proximity. By doing so, we demonstrate tuning of the terahertz resonant response that is based not only on the optical pump fluence but also on the optical wavelength. Because polycrystalline perovskites have subnanosecond photocarrier recombination lifetimes, switching between resonances can occur on an ultrafast time scale. The use of multiple perovskites allows for new functionalities that are not possible using a single semiconducting material. For example, by patterning one perovskite in the gaps of split-ring resonators and bringing a uniform thin film of a second perovskite in close proximity, we demonstrate tuning of the resonant response using one optical wavelength and suppression of the resonance using a different optical wavelength. This general approach offers new capabilities for creating tunable terahertz devices.
机译:控制超材料结构响应的能力可以促进新太赫兹器件的开发,并将其应用于光谱学和通信领域。我们演示了超快频率捷变太赫兹超材料设备,该设备实现了这种功能,其中可以在每个晶胞中以微米级精度对多个钙钛矿进行构图。为实现此目的,我们开发了一种制造技术,该技术可将已经沉积的钙钛矿与有机溶剂隔离开来,从而可以将多个钙钛矿紧密地构图。通过这样做,我们演示了太赫兹谐振响应的调谐,该响应不仅基于光泵浦注量,而且还基于光波长。由于多晶钙钛矿具有亚纳秒级的光载流子复合寿命,因此可以在超快的时间尺度上发生共振之间的切换。多种钙钛矿的使用允许使用单一半导体材料无法实现的新功能。例如,通过在开口环谐振器的间隙中对一个钙钛矿进行构图,并在第二个钙钛矿中均匀贴上均匀的薄膜,我们演示了使用一个光波长调节共振响应并使用不同光波长抑制共振的现象。 。这种通用方法为创建可调太赫兹设备提供了新功能。

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