Group Materials for Electronics, Institute of Materials Engineering and Institute of Micro- and Nanotechnologies MacroNano®, Technische Universität Ilmenau , Gustav-Kirchhoff-Str. 5, 98693 Ilmenau, Germany.
Department of Solid State Physics, University of Debrecen , P.O. Box 2, H-4010 Debrecen, Hungary.
ACS Appl Mater Interfaces. 2017 Feb 22;9(7):6273-6281. doi: 10.1021/acsami.6b13602. Epub 2017 Feb 10.
Nanoporous gold nanoparticles (NPG-NPs) with controlled particle size and pore size are fabricated via a combination of solid-state dewetting and a subsequent dealloying process. Because of the combined effects of size and porosity, the NPG-NPs exhibit greater plasmonic tunability and significantly higher local field enhancement as compared to solid NPs. The effects of the nanoscale porosity and pore size on the optical extinction are investigated for the NPG-NPs with different particle sizes experimentally and theoretically. The influences of both porosity and pore size on the plasmonic properties are very complicated and clearly different for small particles with dominated dipole mode and large particles with dominated quadrupole mode. Au/AlO hybrid porous NPs with controlled porosity and composition ratio are fabricated through plasma-enhanced atomic layer deposition of AlO into the porous structure. In the Au/AlO hybrid porous NPs, both Au and AlO components are bicontinuously percolated over the entire structure. A further red shift of the plasmon peak is observed in the hybrid NPs due to the change of the environmental refractive index. The high tunability of the plasmonic resonances in the NPG-NPs and the hybrid porous NPs can be very useful for many applications in sensing biological and organic molecules.
通过固态去湿和随后的脱合金过程,制备了具有受控粒径和孔径的纳米多孔金纳米颗粒(NPG-NPs)。由于尺寸和孔隙率的综合影响,与实心 NPs 相比,NPG-NPs 表现出更大的等离子体可调谐性和更高的局域场增强。实验和理论研究了不同粒径的 NPG-NPs 中纳米级孔隙率和孔径对光消光的影响。孔隙率和孔径对等离子体特性的影响非常复杂,对于以偶极子模式为主的小颗粒和以四极子模式为主的大颗粒,影响明显不同。通过等离子体增强原子层沉积将 AlO 沉积到多孔结构中,制备了具有受控孔隙率和组成比的 Au/AlO 混合多孔 NPs。在 Au/AlO 混合多孔 NPs 中,Au 和 AlO 两种成分在整个结构中连续双连通。由于环境折射率的变化,在混合 NPs 中观察到等离子体峰的进一步红移。NPG-NPs 和混合多孔 NPs 中等离子体共振的高可调谐性对于传感生物和有机分子的许多应用非常有用。