论文标题

超快的光学泰赫兹调节剂基于可拉伸碳纳米管薄膜

Ultrafast opto-mechanical terahertz modulators based on stretchable carbon nanotube thin films

论文作者

Paukov, Maksim I., Starchenko, Vladimir V., Krasnikov, Dmitry V., Komandin, Gennady A., Gladush, Yuriy G., Zhukov, Sergey S., Gorshunov, Boris P., Nasibulin, Albert G., Arsenin, Aleksey V., Volkov, Valentyn S., Burdanova, Maria G.

论文摘要

对于Terahertz(THZ)波应用,高度必需调谐和快速调制。当通过光学泵 - terahertz探针光谱进行研究时,单壁碳纳米管(SWCNT)薄膜显示出超快的载体重组寿命,而光学激励下信号的相对变化很高,使它们成为高速调节剂的有希望的候选者。在这里,SWCNTTHIN膜和可拉伸底物的结合促进了菌株下SWCNT机械性能的研究,并使新型光学机械调制器的开发能够开发。通过在SWCNT膜上应用一定的应变,可以对有效的板电导和调节深度进行微调以优化设计的调制器。由于SWCNT网络中的结构修饰,调节剂在应变下表现出3-4个数量级的光电导率变化。拉伸用于控制THZ信号,调制深度约为100%,没有应变,而高应变为40%。还显示了调节器对梁极化的敏感性,这也可能派上了可伸缩极化器的设计。我们的结果为设计基于SWCNT膜的高敏性可拉伸设备设计提供了基本的基础。

For terahertz (THz) wave applications, tunable and rapid modulation is highly required. When studied by means of optical pump-terahertz probe spectroscopy, single-walled carbon nanotubes (SWCNTs) thin films demonstrated ultrafast carrier recombination lifetimes with a high relative change in the signal under optical excitation, making them promising candidates for high-speed modulators. Here, combination of SWCNTthin films and stretchable substrates facilitated studies of the SWCNT mechanical properties under strain,and enabled the development of a new type of an opto-mechanical modulator. By applying a certain strain to the SWCNT films, the effective sheet conductance and therefore modulation depth can be fine-tuned to optimize the designed modulator. Modulators exhibited a photoconductivity change of 3-4 orders of magnitude under the strain due to the structural modification in the SWCNT network. Stretching was used to control the THz signal with a modulation depth of around 100 % without strain and 65 % at a high strainoperation of 40 %. The sensitivity of modulators to beam polarisation is also shown, which might also come in handy for the design of a stretchable polariser. Our results give a fundamental grounding for the design of high-sensitivity stretchable devices based on SWCNT films.

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