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Probing weak localization in chemical vapor deposition graphene wide constriction using scanning gate microscopy

机译:使用扫描门显微技术探测化学气相沉积石墨烯宽缩颈中的弱定位

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摘要

Low-temperature scanning gate microscopy (LT-SGM) studies of graphene allow one to obtain important spatial information regarding coherent transport such as weak localization (WL) and universal conductance fluctuations. Although fascinating LT-SGM results on pristine graphene prepared by mechanical exfoliation have been reported in the literature, there appears to be a dearth of LT-SGM results on chemical vapor deposition (CVD)-grown graphene whose large scale and flexible substrate transferability make it an ideal candidate for coherent electronic applications. To this end, we have performed LT-SGM studies on CVD-grown graphene wide constriction (0.8 mu m), which can be readily prepared by cost-effective optical lithography fully compatible with those in wafer foundry, in the WL regime. We find that the movable local gate can sensitively modulate the total conductance of the CVD graphene constriction possibly due to the intrinsic grain boundaries and merged domains, a great advantage for applications in coherent electronics. Moreover, such a conductance modulation by LT-SGM provides an additional, approximately magnetic-field-independent probe for studying coherent transport such as WL in graphene and spatial conductance variation.
机译:石墨烯的低温扫描门显微镜(LT-SGM)研究使人们可以获得有关相干传输的重要空间信息,例如弱局部化(WL)和普遍电导率波动。尽管在文献中已经报道了通过机械剥落制备的原始石墨烯上令人着迷的LT-SGM结果,但似乎缺乏通过化学气相沉积(CVD)生长的石墨烯获得的LT-SGM结果,其大规模和灵活的基材转移性使其成为可能。相干电子应用的理想候选人。为此,我们对CVD生长的石墨烯宽缩颈(0.8微米)进行了LT-SGM研究,可以通过与WL晶圆厂中的晶圆完全兼容的具有成本效益的光学光刻技术轻松制备。我们发现,可移动的局部栅极可以灵敏地调节CVD石墨烯缩颈的总电导,这可能归因于固有的晶界和合并的畴,这在相干电子学中的应用具有很大优势。此外,通过LT-SGM进行的这种电导调制为研究相干传输(例如石墨烯中的WL和空间电导变化)提供了另一种近似于磁场的探针。

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