School of Optical and Electronic Information, Huazhong University of Science and Technology (HUST), Wuhan 430074, China.
School of Optical and Electronic Information, Huazhong University of Science and Technology (HUST), Wuhan 430074, China; Synergetic Innovation Center for Quantum Effects and Application, Key Laboratory of Low-dimensional Quantum Structures and Quantum Control of Ministry of Education, College of Physics and Information Science, Hunan Normal University, Changsha 410081, China.
J Hazard Mater. 2023 Feb 5;443(Pt A):130124. doi: 10.1016/j.jhazmat.2022.130124. Epub 2022 Oct 12.
Plasmonic nanoparticles that self-assemble into highly ordered superlattice nanostructures hold substantial promise for facilitating ultra-trace surface-enhanced Raman scattering (SERS) detection. Herein, we propose a boiling-point evaporation method to synthesize ordered monocrystal-like superlattice Au nanostructures (OML-Au NTs) with a polyhedral morphology. Combined with thermal nanoimprint technology, OML-Au NTs were directly transferred to impact-resistant polystyrene (IPS) flexible SERS substrates, the obtained flexible substrates (donated as OML-Au NTs/IPS) detection limit for R6G molecules as low as 10 M. These results were confirmed by simulating the electromagnetic field distribution of ordered/unordered two-dimensional single-layer and three-dimensional aggregated gold nanostructures. The OML-Au NTs/IPS substrates were successfully used to detect and quantify three commonly-used agricultural pesticides, achieving detection limits as low as 10 M and 10 M, and in situ real-time detection limit reached 0.24 pg/cm for thiram on apple peels, which was 3 orders of magnitude lower than the current detection limit. In addition, the Raman intensity from multiple locations showed a relative standard deviation lower than 7 %, exhibiting the reliability necessary for practical applications. As a result, this research demonstrates a highly reproducible method to enable the development of plasmonic nanomaterials with flexible superstructures.
自组装成高度有序超晶格纳米结构的等离子体纳米粒子有望促进超痕量表面增强拉曼散射 (SERS) 检测。在此,我们提出了一种沸点蒸发方法来合成具有多面体形态的有序单晶状超晶格 Au 纳米结构 (OML-Au NTs)。结合热纳米压印技术,将 OML-Au NTs 直接转移到抗冲击的聚苯乙烯 (IPS) 柔性 SERS 基底上,所获得的柔性基底 (命名为 OML-Au NTs/IPS) 对 R6G 分子的检测限低至 10 M。这些结果通过模拟有序/无序二维单层和三维聚集金纳米结构的电磁场分布得到了证实。OML-Au NTs/IPS 基底成功用于检测和定量三种常用的农业农药,检测限低至 10 M 和 10 M,并且在原位实时检测苹果皮上 thiram 的检测限低至 0.24 pg/cm,比当前检测限低 3 个数量级。此外,来自多个位置的拉曼强度表现出低于 7%的相对标准偏差,表现出实际应用所需的可靠性。因此,这项研究展示了一种高度可重复的方法,可以开发具有柔性超结构的等离子体纳米材料。