The Beijing Key Laboratory for Nano-Photonics and Nano-Structure, Department of Physics, Capital Normal University, Beijing 100048, China.
Nanoscale. 2018 Oct 21;10(39):18720-18727. doi: 10.1039/c8nr06102e. Epub 2018 Oct 1.
The polarizing effect of an excitation laser on a plasmon-driven catalytic reaction on a single nanowire (NW) was investigated experimentally and theoretically. The dimerization of 4-nitrobenzenethiol (4NBT) to p,p'-dimercaptoazobenzene (DMAB) due to localized surface plasmon resonance (LSPR) was realized and monitored via surface enhanced Raman scattering (SERS). The SERS signal degradation has been compensated by using different equivalent points on the NW. It was shown that the SERS signals of both the reactant and product were sensitive to the angles (θ) between the longitude of the NW and the polarization direction of the excitation laser. When the polarization is along the transverse direction of the NW, the SERS signals are drastically enhanced by the LSPR. The efficiency of the plasmon-driven catalytic reaction increased significantly. The mechanism of the polarization-dependent plasmon-driven catalytic reaction was revealed by our dark field experiment and numerical finite-difference time-domain simulation. It was demonstrated that the maximum intensity of the electric field near the surface of the NW would also be a function of the angle θ. The theoretical and experimental results were consistent with each other. This research may pave a way for controlling plasmon-driven catalytic reactions by changing the polarization of an excitation laser incident on single anisotropic nanostructures such as a single NW.
实验和理论研究了激发激光对单根纳米线(NW)上的等离子体驱动催化反应的偏振效应。通过表面增强拉曼散射(SERS)实现并监测了由于局域表面等离子体共振(LSPR)而导致的 4-硝基苯硫醇(4NBT)二聚为 p,p'-二巯基偶氮苯(DMAB)。通过在 NW 上使用不同的等效点来补偿 SERS 信号的衰减。结果表明,反应物和产物的 SERS 信号均对 NW 的长轴与激发激光偏振方向之间的角度(θ)敏感。当偏振方向沿 NW 的横向时,LSPR 会使 SERS 信号急剧增强。等离子体驱动的催化反应效率显著提高。我们的暗场实验和数值有限差分时域模拟揭示了偏振相关的等离子体驱动催化反应的机制。结果表明,NW 表面附近的电场强度最大值也将是角度θ的函数。理论和实验结果相互一致。这项研究可能为通过改变入射到单各向异性纳米结构(例如单根 NW)上的激发激光的偏振来控制等离子体驱动的催化反应铺平道路。