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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Reversible sulfuric acid doping of graphene probed by in-situ multi-wavelength Raman spectroscopy
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Reversible sulfuric acid doping of graphene probed by in-situ multi-wavelength Raman spectroscopy

机译:通过原位多波长拉曼光谱法探测石墨烯的可逆硫酸掺杂

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摘要

Since lattice strain and charge density affect various material properties of graphene, a reliable and efficient method is required for quantification of the two variables. While Raman spectroscopy is sensitive and non-destructive, its validity towards precise quantification of chemical charge doping has not been tested. In this work, we quantified in-situ the fractional frequency change of 2D and G peaks in response of charge density induced by sulfuric acid solution as well as native lattice strain. Based on the experimental data and theoretical corroboration, we presented an optical method that simultaneously determines strain and chemically-induced charge density for three popular excitation wavelengths of 457, 514 and 633 nm. In order to expedite intercalation of dopant species through the graphene-SiO2 substrates, dense arrays of nanopores were precisely generated in graphene by thermal oxidation. The nano-perforated graphene membrane system was robust for multiple cycles of doping and undoping processes, and will be useful in studying various types of chemical interactions with graphene. (C) 2018 Elsevier Ltd. All rights reserved.
机译:由于晶格应变和电荷密度影响石墨烯的各种材料特性,因此需要可靠且有效的方法来定量两个变量。虽然拉曼光谱是敏感的并且无损,但它尚未测试其对精确定量化学电荷掺杂的有效性。在这项工作中,我们原位地定量了2D和G峰的分数频率变化,硫酸溶液诱导的电荷密度以及天然晶格菌株的响应。基于实验数据和理论证实,我们介绍了一种光学方法,其同时确定应变和化学诱导的三个液体激发波长为457,514和633nm的电荷密度。为了通过石墨烯-SiO 2基材加速掺杂剂物质的插入,通过热氧化精确地在石墨烯中精确地产生纳米孔的致密阵列。纳米穿孔石墨烯膜系统对于多次掺杂和未掺杂工艺的循环是鲁棒的,并且可用于研究与石墨烯的各种化学相互作用。 (c)2018年elestvier有限公司保留所有权利。

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