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Maskless Lithography and in situ Visualization of Conductivity of Graphene using Helium Ion Microscopy

机译:使用氦离子显微镜进行无掩模光刻和石墨烯电导率的原位可视化

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摘要

The remarkable mechanical and electronic properties of graphene make it an ideal candidate for next generation nanoelectronics. With the recent development of commercial-level single-crystal graphene layers, the potential for manufacturing household graphene-based devices has improved, but significant challenges still remain with regards to patterning the graphene into devices. In the case of graphene supported on a substrate, traditional nanofabrication techniques such as e-beam lithography (EBL) are often used in fabricating graphene nanoribbons but the multi-step processes they require can result in contamination of the graphene with resists and solvents. In this letter, we report the utility of scanning helium ion lithography for fabricating functional graphene nanoconductors that are supported directly on a silicon dioxide layer, and we measure the minimum feature size achievable due to limitations imposed by thermal fluctuations and ion scattering during the milling process. Further we demonstrate that ion beams, due to their positive charging nature, may be used to observe and test the conductivity of graphene-based nanoelectronic devices in situ.
机译:石墨烯出色的机械和电子性能使其成为下一代纳米电子学的理想选择。随着工业级单晶石墨烯层的最新发展,制造家用石墨烯基器件的潜力得到了提高,但是在将石墨烯图案化为器件方面仍然存在重大挑战。在将石墨烯支撑在基底上的情况下,传统的纳米制造技术(例如电子束光刻(EBL))通常用于制造石墨烯纳米带,但是它们需要的多步骤过程可能导致抗蚀剂和溶剂污染石墨烯。在这封信中,我们报告了扫描氦离子光刻技术在直接支撑在二氧化硅层上的功能性石墨烯纳米导体的制造中的作用,并且我们测量了由于研磨过程中热涨落和离子散射所施加的限制而可达到的最小特征尺寸。进一步,我们证明了离子束由于其正电荷性质,可用于原位观察和测试基于石墨烯的纳米电子器件的电导率。

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