论文标题
二维范德华异质结构,用于协同改善的表面增强的拉曼光谱
Two-dimensional van der Waals Heterostructures for Synergistically Improved Surface Enhanced Raman Spectroscopy
论文作者
论文摘要
表面增强的拉曼光谱(SERS)是一种精确且非侵入性的分析技术,广泛用于化学分析,环境保护,食品加工,药物和诊断生物学。但是,生产具有最小荧光背景的高度敏感和可重复使用的SERS底物仍然是一个挑战。在这项工作中,我们建议使用二维材料(2D材料)的范德华异质结构来覆盖等离子金属纳米颗粒以解决这一挑战。原子上稀薄的氮化硼(BN)和石墨烯的异质结构提供协同作用:(1)电子可以穿过原子较薄的BN隧道,从而使石墨烯和探针分子之间的电荷转移抑制荧光背景; (2)除电磁场机理(EM)外,石墨烯通过石墨烯通过石墨烯增强了SERS敏感性; (3)原子上的BN可保护基础在空气中360°C的再生期间的基础石墨烯和Ag纳米颗粒免受氧化的氧化,以便可以重复使用SERS底物。这些进步将促进SERS的更广泛应用,尤其是在检测具有较高灵敏度的荧光分子时。
Surface enhanced Raman spectroscopy (SERS) is a precise and non-invasive analytical technique that is widely used in chemical analysis, environmental protection, food processing, pharmaceutics, and diagnostic biology. However, it is still a challenge to produce highly sensitive and reusable SERS substrates with minimum fluorescence background. In this work, we propose the use of van der Waals heterostructures of two-dimensional materials (2D materials) to cover plasmonic metal nanoparticles to solve this challenge. The heterostructures of atomically thin boron nitride (BN) and graphene provide synergistic effects: (1) electrons could tunnel through the atomically thin BN, allowing the charge transfer between graphene and probe molecules to suppress fluorescence background; (2) the SERS sensitivity is enhanced by graphene via chemical enhancement mechanism (CM) in addition to electromagnetic field mechanism (EM); (3) the atomically thin BN protects the underlying graphene and Ag nanoparticles from oxidation during heating for regeneration at 360 °C in the air so that the SERS substrates could be reused. These advances will facilitate wider applications of SERS, especially on the detection of fluorescent molecules with higher sensitivity.