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Graphene optoelectronics based on antidot superlattices

机译:基于Antidot超晶格的石墨烯光电

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Graphene is well known for its outstanding electronic, thermal, and mechanical properties, and has recently gained tremendous interest as a nanomaterial for optoelectronic devices. We review our recent efforts on exfoliated graphene with a particular focus on the influence of graphene's chiral edges on the electronic and optical properties. We first show that Raman spectroscopy can not only be used for layer metrology but also to monitor the composition of graphene's zigzag/armchair edges. To elucidate the role of the localized edge state density, we fabricated dye sensitized antidot superlattices, i.e. nanopatterned graphene. The fluorescence from deposited dye molecules was found to quench strongly as a function of increasing antidot filling fraction, whereas it was enhanced in unpatterned but electrically back-gated samples. This contrasting behavior is strongly indicative of a built-in lateral electric field of up to 260 mV accounting for p-type doping as well as fluorescence quenching due to dissociation of electron-hole pairs from attached dye molecules. Our study provides new insights into the interplay of localized edge states in antidot superlattices and the resulting band bending, which are critical properties to enable novel applications of nanostructured graphene for light harvesting and photovoltaic devices.
机译:石墨烯以其出色的电子,热和机械性能而闻名,最近作为光电子器件的纳米材料引起了极大的兴趣。我们回顾了我们最近对剥离石墨烯的研究,特别关注石墨烯的手性边缘对电子和光学性能的影响。我们首先显示拉曼光谱不仅可以用于层计量,而且可以监视石墨烯的锯齿形/扶手椅形边缘的成分。为了阐明局部边缘态密度的作用,我们制造了染料敏化的反点超晶格,即纳米图案化的石墨烯。发现沉积的染料分子发出的荧光会随着淬灭剂填充分数的增加而强烈淬灭,而在未构图但电反向浇铸的样品中则增强。这种相反的行为有力地表明了高达260 mV的内置横向电场,这说明了p型掺杂以及由于电子空穴对与附着的染料分子解离而导致的荧光猝灭。我们的研究为解点超晶格中局部边缘态的相互作用以及由此产生的能带弯曲提供了新的见解,这是使纳米结构石墨烯能够在光收集和光伏器件中得到新应用的关键特性。

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