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Graphene based plasma-wave devices for terahertz applications

机译:基于石墨烯的等离子体波装置,用于太赫兹应用

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摘要

Unique properties of graphene are combined to enable graphene plasmonic devices that could revolutionize the terahertz (THz) electronic technology. A high value of the carrier mobility allows us to excite resonant plasma waves. The graphene bipolar nature allows for different mechanisms of plasma wave excitation. Graphene bilayer and multilayer structures make possible improved THz device configurations. The ability of graphene to form a high quality heterostructure with h-BN, black phosphorus, and other materials systems supports advanced heterostructure devices comprised of the best properties of graphene and other emerging materials. In particular, using black phosphorus compounds for cooling electron-hole plasma in graphene could dramatically improve the conditions for THz lasing. High optical phonon energy allows for reaching higher plasma frequencies that are supported by high sheet carrier densities in graphene. Recent improvements in graphene technology combined with a better understanding of the device physics of graphene THz plasmonics and graphene plasmonic device designs hold promise to make graphene THz plasmonic technology one of the key graphene applications. Commercialization of plasmonic graphene technology is facing the same challenges as other graphene applications, which have difficulties in producing uniform large graphene layers, bilayers, and heterostructures of high quality and making good low resistance stable Ohmic contacts. The time projection for large scale graphene electronic device applications now extends into the 2030s. However, emerging graphene mass production technologies might bring commercial applications of the graphene plasmonic terahertz technology closer.
机译:将石墨烯的独特性能组合起来,使石墨烯等级装置能够彻底改变太赫兹(THz)电子技术。载流子迁移率的高值允许我们激发共振等离子体波。石墨烯双极性质允许不同的等离子体波激励机制。石墨烯双层和多层结构使得可以改进的THz设备配置。石墨烯与H-BN,黑磷和其他材料系统形成高质量异质结构的能力支持高级异质结构装置,该装置包括石墨烯和其他新出现的材料的最佳性能。特别地,在石墨烯中使用用于冷却电子 - 空穴等离子体的黑磷化合物可以显着改善THz激光的条件。高光学声音能量允许通过石墨烯中的高张板载体密度支撑的高等离子体频率。石墨烯技术的最新改进结合了石墨烯THz等离子体和石墨烯等级设计的器件物理学的更好理解,使得制造石墨烯THz等离子体技术成为关键石墨烯应用之一。等级石墨烯技术的商业化面临与其他石墨烯应用相同的挑战,在生产均匀的大型石墨烯层,双层和高质量的异质结构方面具有困难,并制造良好的低电阻稳定的欧姆触点。大型石墨烯电子设备应用的时间投影现在延伸到2030s中。然而,新兴的石墨烯批量生产技术可能会使石墨烯等级太赫兹技术更近的商业应用。

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  • 来源
    《Applied Physics Letters》 |2020年第14期|140501.1-140501.6|共6页
  • 作者

    V. Ryzhii; T.Otsuji; M. Shur;

  • 作者单位

    Research Institute of Electrical Communication Tohoku University Sendai 980-8577 Japan Institute of Ultra High Frequency Semiconductor Electronics of RAS Moscow 117105 Russia Center of Photonics and Two-Dimensional Materials Moscow Institute of Physics and Technology Dolgoprudny 141700 Russia;

    Research Institute of Electrical Communication Tohoku University Sendai 980-8577 Japan;

    Department of Electrical Computer and Systems Engineering and Department of Physics Applied Physics and Astronomy Rensselaer Polytechnic Institute Troy New York 12180 USA Electronics of the Future Inc. Vienna Virginia 22181 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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