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Fabrication and long-wavelength characterization of neat and chemically modified graphene

机译:整洁和化学改性石墨烯的制造和长波长表征

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Graphene, a single- or several layer-thick carbon, attracts significant research activity because of its exceptional material properties. Graphene is a promising material for optoelectronic applications. Neat graphene demonstrates potential as a material for long wavelength photodetectors working at elevated temperatures. Chemical modification of graphene opens up many new applications of this material in electronics, in new composite materials, and in new catalysts for different chemical processes. Chemical vapor deposition-grown large-area graphene can be successfully modified with the creation of benzyne attachments. The investigation of microwave properties is an important part of graphene research. Two variants of near-field long wavelength microscopy were found efficient with graphene. Measurements with a probe formed by an electrically open end of a 4 GHz half-lambda parallel-strip transmission line resonator allow the implementation of an electrodynamic model of graphene microwave impedance. The results of near-field scanning superconducting quantum interference device (SQUID) RF microscopy of graphite and graphene at 200 MHz shed light on mechanisms of AC graphene response: screening currents induced in graphene by an external RF magnetic field tend to localize near structural defects.
机译:石墨烯,单层或几层厚的碳,由于其特殊材料特性而吸引了显着的研究活动。石墨烯是光电应用的有希望的材料。纯石墨烯表明了在高温下工作的长波长光电探测器的潜力。石墨烯的化学改性在电子产品,新的复合材料和新型催化剂中开辟了这种材料的许多新应用,以及用于不同化学方法的新型催化剂。通过产生苯达尼附件,可以成功地改变化学气相沉积的大面积石墨烯。微波特性的调查是石墨烯研究的重要组成部分。近场长波长显微镜的两种变体有效地与石墨烯有效。通过由4GHz半λ平行条传输线谐振器的电开口端形成的探针,允许实现石墨烯微波阻抗的电动模型。近场扫描超导量子干扰装置(Squid)RF显微镜在AC石墨烯响应机理上的石墨和石墨烯中的近场和石墨烯的结果:通过外部RF磁场中石墨烯诱导的筛选电流倾向于定位近结构缺陷。

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