Lin Yunpeng, Hu Jinyong, Zhang Wenbo, Jiang Li, Yi Deqi, Rujiralai Thitima, Ma Jie
School of Physics, Sun Yat-sen University, Guangzhou 510275, P.R. China.
State Key Laboratory of Optoelectronic Materials and Technologies, Sun Yat-sen University, Guangzhou 510275, P.R. China.
Nanoscale. 2022 Dec 8;14(47):17550-17560. doi: 10.1039/d2nr03466b.
Dimer optical antennas (OAs) enable great fluorescence enhancement and excitation volume reduction and hence potentially can be a very useful tool for single-molecule detection. The realization of broadband fluorescence enhancement with a dimer OA remains an essential step for its usage in multi-color single-molecule fluorescence (SMF) detection. Although silver dimer OAs have been shown to be able to yield broadband fluorescence enhancement over the visible spectrum, they are amenable to oxidization, hard to functionalize, and could cause cytotoxicity. To overcome these limitations, in this work, we took advantage of nano-sized silver due to its optical properties and gold due to its chemical properties and developed an ameliorated Ag@Au dimer OA in terms of its overall performance. The Ag@Au nanoparticle in the dimer OA contains a 70 nm silver core and an ultra-thin (∼1-5 nm) gold shell which play a key role in its optical responses. Furthermore, we employed three typical dyes, , FAM, TAMRA and Cy5, representing the blue, yellow and red ranges, respectively, and characterized their single-molecule fluorescence enhancements in the presence of Au or Ag@Au OAs. Our results indicate that, in contrast to its Au counterpart, the Ag@Au dimer OA prepared here can greatly improve its optical response in the blue range and eventually achieve broadband fluorescence enhancement throughout almost the whole visible spectral range. Meanwhile, it also maintains good chemical stability and accessibility to functionalization. Such Ag@Au dimer OAs are thus expected to have many important applications in the future, including single-molecule sequencing and multi-color biosensing.
二聚体光学天线(OAs)能够实现显著的荧光增强并减小激发体积,因此在单分子检测中可能是一种非常有用的工具。利用二聚体OA实现宽带荧光增强仍然是其用于多色单分子荧光(SMF)检测的关键步骤。尽管银二聚体OAs已被证明能够在可见光谱范围内产生宽带荧光增强,但它们易于氧化、难以功能化,并且可能导致细胞毒性。为了克服这些限制,在这项工作中,我们利用了具有光学特性的纳米银和具有化学特性的金,并在整体性能方面开发了一种改良的Ag@Au二聚体OA。二聚体OA中的Ag@Au纳米颗粒包含一个70 nm的银核和一个超薄(约1-5 nm)的金壳,它们在其光学响应中起关键作用。此外,我们使用了三种典型的染料,即FAM、TAMRA和Cy5,分别代表蓝色、黄色和红色范围,并表征了它们在存在金或Ag@Au OAs时的单分子荧光增强情况。我们的结果表明,与金对应物相比,这里制备的Ag@Au二聚体OA可以大大改善其在蓝色范围内的光学响应,并最终在几乎整个可见光谱范围内实现宽带荧光增强。同时,它还保持了良好的化学稳定性和功能化的可及性。因此,这种Ag@Au二聚体OAs有望在未来有许多重要应用,包括单分子测序和多色生物传感。