Department of Mechanical Engineering and Materials Science, Institute of Materials Science and Engineering, Washington University in St. Louis, St Louis, Missouri 63130, USA.
Analyst. 2017 Nov 20;142(23):4536-4543. doi: 10.1039/c7an01595j.
Hollow plasmonic nanostructures with built-in and accessible electromagnetic hotspots such as nanorattles, obtained through a galvanic replacement reaction, have received wide attention in chemical and biological sensing and targeted drug delivery. In this study, we investigate the surface enhanced Raman scattering (SERS) activity of plasmonic nanorattles obtained through different degrees of galvanic replacement of Au@Ag nanocubes. We found that the SERS efficacy of the nanorattles is governed by the plasmon extinction intensity, localized surface plasmon resonance (LSPR) wavelength of the nanostructures with respect to the excitation source and intensity of the electromagnetic field at the hotspot, with the latter playing a determining role. Finite-difference time-domain (FDTD) simulations showed excellent agreement with the experimental findings that an optimal degree of galvanic replacement is critical for maximum SERS enhancement. The rational design and synthesis of the plasmonic nanorattles based on these findings can make these nanostructures highly attractive for SERS-based chemical and biological sensing and bioimaging.
具有内置和可及电磁热点的空心等离子体纳米结构,例如通过电置换反应获得的纳米瓶,在化学和生物传感以及靶向药物输送方面受到了广泛关注。在这项研究中,我们研究了通过不同程度的金@银纳米立方体电置换获得的等离子体纳米瓶的表面增强拉曼散射(SERS)活性。我们发现,纳米瓶的 SERS 功效受等离子体消光强度、纳米结构的局域表面等离子体共振(LSPR)波长相对于激发源以及热点处电磁场的强度的控制,后者起着决定性的作用。有限差分时域(FDTD)模拟与实验结果非常吻合,表明最佳电置换程度对于最大 SERS 增强至关重要。基于这些发现,对等离子体纳米瓶进行合理的设计和合成可以使这些纳米结构在基于 SERS 的化学和生物传感及生物成像方面极具吸引力。