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The influence of mechanical strain on the optical properties of spherical gold nanoparticles

机译:机械应变对球形金纳米粒子光学性能的影响

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We utilize classical Mie scattering theory to investigate the effects of tensile and compressive mechanical strain on both the far field (absorption, scattering and extinction efficiencies) and near field (surface enhanced Raman scattering) optical properties of spherical gold nanoparticles with diameters ranging from 10 to 100 nm. By accounting for the strain effects on both the ionic core (bound) and conduction (free) electrons through appropriate modifications of the bulk dielectric functions, we find that gold nanoparticles are relatively sensitive to the effects of mechanical strain due to the fact that the plasmon resonance wavelength for spherical gold particles, which occurs around λ = 520nm, is nearly coincident with the interband transitions of the core electrons. Specifically, we find that tensile strain leads to significant enhancements ranging from 60% to 120% in the far field optical efficiencies, while compressive strain leads to similar decreases, and that the plasmon resonance wavelength can be red or blueshifted up to 100 nm due to the applied strain. Finally, we find that tensile strain also strongly enhances the local electric (E)-field at the surface of the nanoparticles, which is of considerable interest for surface-enhanced Raman scattering applications; 5% tensile strain is found to enhance the |E|~4 intensity by 63%. The present results demonstrate the potential of mechanical strain, and specifically that of tensile mechanical strain in enhancing and tailoring the optical properties of gold nanoparticles.
机译:我们利用经典的Mie散射理论来研究拉伸和压缩机械应变对球形金纳米粒子的远场(吸收,散射和消光效率)和近场(表面增强拉曼散射)光学特性的影响,直径范围为10至100纳米通过适当修改体介电函数来考虑对离子核(束缚)和传导(自由)电子的应变效应,我们发现,由于等离激元的存在,金纳米粒子对机械应变的影响相对敏感球形金粒子的共振波长大约在λ= 520nm处,与核心电子的带间跃迁几乎一致。具体来说,我们发现拉伸应变导致远场光学效率的显着提高,范围从60%到120%,而压缩应变导致相似的降低,并且由于以下原因,等离子体激元谐振波长可以红色或蓝移直至100 nm:施加的应变。最后,我们发现拉伸应变也极大地增强了纳米颗粒表面的局部电场,这对于表面增强拉曼散射应用非常重要。发现5%的拉伸应变使| E |〜4强度提高了63%。本结果证明了机械应变,特别是拉伸机械应变在增强和调整金纳米颗粒的光学性能中的潜力。

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