Liang Xiu, Liang BenLiang, Pan Zhenghui, Lang Xiufeng, Zhang Yuegang, Wang Guangsheng, Yin Penggang, Guo Lin
Key Laboratory of Bio-inspired Smart Interfacial Science and Technology of Ministry of Education, School of Chemistry and Environment, Beihang University, Beijing 100191, China.
Nanoscale. 2015 Dec 21;7(47):20188-96. doi: 10.1039/c5nr06010a. Epub 2015 Nov 17.
Various graphene-based Au nanocomposites have been developed as surface-enhanced Raman scattering (SERS) substrates recently. However, efficient use of SERS has been impeded by the difficulty of tuning SERS enhancement effects induced from chemical and plasmonic enhancement by different preparation methods of graphene. Herein, we developed graphene-based Au hybrids through physical sputtering gold NPs on monolayer graphene prepared by chemical vapor deposition (CVD) as a CVD-G/Au hybrid, as well as graphene oxide-gold (GO/Au) and reduced-graphene oxide (rGO/Au) hybrids prepared using the chemical in situ crystallization growth method. Plasmonic and chemical enhancements were tuned effectively by simple methods in these as-prepared graphene-based Au systems. SERS performances of CVD-G/Au, rGO/Au and GO/Au showed a gradually monotonic increasing tendency of enhancement factors (EFs) for adsorbed Rhodamine 6G (R6G) molecules, which show clear dependence on chemical bonds between graphene and Au, indicating that the chemical enhancement can be steadily controlled by chemical groups in a graphene-based Au hybrid system. Most notably, we demonstrate that the optimized GO/Au was able to detect biomolecules of adenine, which displayed high sensitivity with a detection limit of 10(-7) M as well as good reproducibility and uniformity.
近年来,各种基于石墨烯的金纳米复合材料已被开发用作表面增强拉曼散射(SERS)基底。然而,由于通过不同的石墨烯制备方法调节化学增强和等离子体增强所引起的SERS增强效果存在困难,SERS的有效利用受到了阻碍。在此,我们通过在化学气相沉积(CVD)制备的单层石墨烯上物理溅射金纳米颗粒来制备基于石墨烯的金杂化物,即CVD-G/Au杂化物,以及使用化学原位结晶生长法制备的氧化石墨烯-金(GO/Au)和还原氧化石墨烯-金(rGO/Au)杂化物。在这些制备好的基于石墨烯的金体系中,通过简单的方法有效地调节了等离子体增强和化学增强。CVD-G/Au、rGO/Au和GO/Au的SERS性能对于吸附的罗丹明6G(R6G)分子表现出增强因子(EFs)逐渐单调增加的趋势,这表明其明显依赖于石墨烯与金之间的化学键,说明在基于石墨烯的金杂化体系中,化学增强可以通过化学基团得到稳定控制。最值得注意的是,我们证明优化后的GO/Au能够检测腺嘌呤生物分子,其检测限为10^(-7) M,具有高灵敏度以及良好的重现性和均匀性。