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首页> 外文期刊>Advanced Optical Materials >Augmented All-Optical Active Terahertz Device Using Graphene-Based Metasurface
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Augmented All-Optical Active Terahertz Device Using Graphene-Based Metasurface

机译:使用基于石墨烯的Metasurface来增强全光活性太赫兹装置

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Photo-excited graphene has a positive (semiconductor-like) or negative (metal-like) response depending on the Fermi level, which is tuned by gate control, doping, and growth. Both negative and positive photoconductive responses have a potential application as an ultrafast optical modulator in the control of light transmission. However, it is challenging to achieve a high on/off ratio in the photo-excited graphene because of a small absorption of electromagnetic waves and a limitation of photo-induced conductivity change. Here, the negative-type high on/off ratio and ultrafast terahertz modulation are experimentally demonstrated using graphene/metal nanoslot antennas. When the graphene covers the nanoslot antennas, the terahertz waves are completely blocked (off-state). This perfect extinction results from the enhanced intraband absorption in graphene by strong localized fields near the nanogap. However, once the optical pump is applied to the graphene/nanoslot antennas, terahertz transmission becomes recovered resonantly (on-state) due to the photo-induced transparency of graphene that leads to a distinctive modulation from off- to on-resonance. Furthermore, the fast carrier relaxation induced by strong terahertz field-driven carrier redistribution is responsible for the faster modulation of transient terahertz transmission. The results will open up pathways toward negative-response terahertz modulation applications with high on/off ratio and ultrafast time scale.
机译:照片激发石墨烯具有正(半导体样)或负(金属状)响应,具体取决于Fermi水平,由栅极控制,掺杂和生长调整。负极和正光电导响应均具有在光传输控制中作为超快光调制器的潜在应用。然而,由于电磁波的吸收小以及光诱导的导电性变化的限制,在光兴高的石墨烯中实现高开/关比具有挑战性。这里,使用石墨烯/金属纳米卷天线实验证明了负型高开关比和超快速太赫兹调制。当石墨烯覆盖纳米辊天线时,太赫兹波完全被阻挡(偏离状态)。这种完美的灭绝是通过纳米剧图附近的强大局部区域的Graphene中增强的IntraNand吸收产生。然而,一旦光学泵被施加到石墨烯/纳米球天线,由于石墨烯的光诱导的透明度导致从截止到谐振的光源性透明度,太赫兹变速器被谐振(导通状态)变得谐振(导致状态)。此外,由强大的太赫兹场驱动载波再分布诱导的快速载体松弛是负责瞬态太赫兹传输的更快调制。结果将使高响应太赫兹调制应用的途径,具有高开/关比和超快时间尺度。

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