Hefei National Laboratory for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei, Anhui 230026, People's Republic of China.
ACS Nano. 2011 Feb 22;5(2):952-8. doi: 10.1021/nn102291j. Epub 2011 Jan 6.
Chemical enhancement is an important mechanism in surface-enhanced Raman spectroscopy. It is found that mildly reduced graphene oxide (MR-GO) nanosheets can significantly increase the chemical enhancement of the main peaks by up to 1 order of magnitude for adsorbed Rhodamine B (RhB) molecules, in comparison with the mechanically exfoliated graphene. The observed enhancement factors can be as large as ∼10(3) and show clear dependence on the reduction time of graphene oxide, indicating that the chemical enhancement can be steadily controlled by specific chemical groups. With the help of X-ray photoelectron spectra, these chemical species are identified and the origin of the observed large chemical enhancement can thus be revealed. It is shown that the highly electronegative oxygen species, which can introduce a strong local electric field on the adsorbed molecules, are responsible for the large enhancement. In contrast, the local defects generated by the chemical reduction show no positive correlation with the enhancement. Most importantly, the dramatically enhanced Raman spectra of RhB molecules on MR-GO nanosheets reproduce all important spectral fingerprints of the molecule with a negligible frequency shift. Such a unique noninvasive feature, along with the other intrinsic advantages, such as low cost, light weight, easy availability, and flexibility, makes the MR-GO nanosheets very attractive to a variety of practical applications.
化学增强是表面增强拉曼光谱学中的一个重要机制。研究发现,与机械剥离的石墨烯相比,轻度还原氧化石墨烯(MR-GO)纳米片可以使吸附的 Rhodamine B(RhB)分子的主要峰的化学增强高达 1 个数量级。观察到的增强因子可高达 ∼10(3),并且明显依赖于氧化石墨烯的还原时间,表明可以通过特定的化学基团来稳定控制化学增强。借助 X 射线光电子能谱,可以鉴定这些化学物质,从而揭示观察到的大化学增强的起源。结果表明,高度电负性的含氧物种在吸附分子上引入了强的局域电场,是产生大增强的原因。相比之下,化学还原产生的局部缺陷与增强没有正相关关系。最重要的是,MR-GO 纳米片上 RhB 分子的拉曼光谱得到了极大增强,几乎没有频率位移,重现了分子的所有重要光谱特征。这种独特的非侵入性特征,以及其他固有优势,如低成本、轻量级、易于获取和灵活性,使得 MR-GO 纳米片在各种实际应用中极具吸引力。