Key Laboratory of Materials Physics and Anhui Key Laboratory of Nanomaterials and Nanotechnology, Institute of Solid State Physics, HFIPS, Chinese Academy of Sciences, P.O. Box 1129, Hefei 230031, China.
University of Science and Technology of China, Hefei 230026, China.
ACS Appl Mater Interfaces. 2020 Nov 11;12(45):50713-50720. doi: 10.1021/acsami.0c13828. Epub 2020 Oct 28.
We present a well-designed, low-cost, and simple synthetic approach to realizing the hybrid composites of Ag nanoparticle-decorated bacterial nanocellulose (denoted as Ag-NPs@BNC) as a three-dimensional (3D) flexible surface-enhanced Raman scattering (SERS) substrate with ultrahigh SERS sensitivity, excellent signal reproducibility, and stability. The homogeneous Ag-NPs with high density were grown on the networked BNC fibers by the controlled silver mirror reaction and volume shrinkage treatment, which created uniformly distributed SERS "hot spots" in the 3D networked hybrid substrate. Attributed to these unique 3D hot spots, the as-presented Ag-NPs@BNC substrates exhibited ultrahigh sensitivity and good spectral reproducibility. Moreover, the hydrophilic BNC exhibits good permeability and adsorption performances, which could capture the target molecules in the highly active hot spot areas to further improve the SERS sensitivity. As a result, not only dye molecules (rhodamine 6G) but also toxic organic pollutants such as 2-naphthalenethiol and thiram have been detected using the hybrid substrates as SERS substrates, with sensitivities of 1.6 × 10 and 3.8 × 10 M, respectively. The good linear response of the intensity and the logarithmic concentration revealed promising applications in the rapid and quantitative detection of toxic organic pollutants. Besides, this self-supported Ag-NPs@BNC substrate demonstrated good stability and flexibility for varied detection conditions. Therefore, the 3D networked, flexible, ultrasensitive, and stable Ag-NPs@BNC substrate shows potential as a versatile SERS substrate in the rapid identification of various organic molecules.
我们提出了一种设计合理、成本低廉且简单的合成方法,实现了银纳米粒子修饰的细菌纳米纤维素(Ag-NPs@BNC)的杂化复合材料,作为具有超高灵敏度、出色信号重现性和稳定性的三维(3D)柔性表面增强拉曼散射(SERS)基底。通过控制银镜反应和体积收缩处理,在网络状 BNC 纤维上生长出均匀的高密度 Ag-NPs,在 3D 网络状杂化基底中产生均匀分布的 SERS“热点”。由于这些独特的 3D 热点,所提出的 Ag-NPs@BNC 基底表现出超高的灵敏度和良好的光谱重现性。此外,亲水性的 BNC 具有良好的渗透性和吸附性能,可以在高活性热点区域捕获目标分子,从而进一步提高 SERS 灵敏度。结果,不仅可以检测染料分子(罗丹明 6G),还可以检测到有毒有机污染物,如 2-萘硫醇和福美双,其灵敏度分别为 1.6×10 和 3.8×10 M。强度和对数浓度的良好线性响应表明,该杂化基底在快速定量检测有毒有机污染物方面具有广阔的应用前景。此外,这种自支撑的 Ag-NPs@BNC 基底在不同的检测条件下表现出良好的稳定性和柔韧性。因此,3D 网络状、柔性、超高灵敏度和稳定的 Ag-NPs@BNC 基底作为一种通用的 SERS 基底,在快速识别各种有机分子方面具有潜力。