Chen Ming, Wang Bin, Wang Jingfan, Liu Hongliang, Chen Zhixiang, Xu Xiaoxuan, Zhao Xing
Tianjin Key Laboratory of Micro-Scale Optical Information Science and Technology, Institute of Modern Optics, Nankai University, Tianjin 300350, China.
College of Artificial Intelligence, Nankai University, Tianjin 300350, China.
Nanomaterials (Basel). 2022 May 10;12(10):1626. doi: 10.3390/nano12101626.
Gap-enhanced Raman tags (GERTs) were widely used in cell or biological tissue imaging due to their narrow spectral linewidth, weak photobleaching effect, and low biological matrix interference. Here, we reported a new kind of graphene-wrapped, petal-like, gap-enhanced Raman tags (GP-GERTs). The 4-Nitrobenzenethiol (4-NBT) Raman reporters were embedded in the petal-like nanogap, and graphene was wrapped on the surface of the petal-like, gap-enhanced Raman tags. Finite-difference time-domain (FDTD) simulations and Raman experimental studies jointly reveal the Raman enhancement mechanism of graphene. The enhancement of GP-GERTs is jointly determined by the petal-like "interstitial hotspots" and electron transfer between graphene and 4-NBT molecules, and the total Raman enhancement factor () can reach 10. Mesoporous silica was grown on the surface of GP-GERTs by tetraethyl orthosilicate hydrolysis to obtain Raman tags of MS-GP-GERTs. Raman tag stability experiments showed that: MS-GP-GERTs not only can maintain the signal stability in aqueous solutions of different pH values (from 3 to 12) and simulated the physiological environment (up to 72 h), but it can also stably enhance the signal of different Raman molecules. These highly stable, high-signal-intensity nanotags show great potential for -based bioimaging and multicolor imaging.
间隙增强拉曼标签(GERTs)因其谱线宽度窄、光漂白效应弱和生物基质干扰低而被广泛应用于细胞或生物组织成像。在此,我们报道了一种新型的石墨烯包裹的花瓣状间隙增强拉曼标签(GP-GERTs)。4-硝基苯硫酚(4-NBT)拉曼报告分子被嵌入花瓣状纳米间隙中,石墨烯包裹在花瓣状间隙增强拉曼标签的表面。时域有限差分(FDTD)模拟和拉曼实验研究共同揭示了石墨烯的拉曼增强机制。GP-GERTs的增强是由花瓣状“间隙热点”以及石墨烯与4-NBT分子之间的电子转移共同决定的,总拉曼增强因子()可达10。通过正硅酸乙酯水解在GP-GERTs表面生长介孔二氧化硅,得到MS-GP-GERTs拉曼标签。拉曼标签稳定性实验表明:MS-GP-GERTs不仅能在不同pH值(3至12)的水溶液中保持信号稳定性并模拟生理环境(长达72小时),而且还能稳定增强不同拉曼分子的信号。这些高度稳定、高信号强度的纳米标签在基于的生物成像和多色成像方面显示出巨大潜力。