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Fabrication of Asymmetric Nanostructures for Plasmonic Force Propulsion

机译:代言力推进的不对称纳米结构的制备

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The objective of this research is to manufacture and investigate the characteristics and use of asymmetric, metallic, nanostructures for plasmonic force propulsion, a developing method of nano-/picosatellite thrust generation. Visible to near-infrared light is focused onto sub-wavelength nanostructures to generate polarized oscillations of electrons on the surface of the metallic nanostructures (surface plasmon polaritons). The surface plasmon polaritons accelerate nanoparticle propellant away from the nanostructure, creating thrust Previous numerical simulations have shown that asymmetric nanostructures can resonate strongly within the visible spectrum. This is the first experiment ever attempted and first to successfully demonstrate this resonance where the resonance peak is λ = 830 nm. The resonance peak of the experimental optical characterization agrees well with our computed model, showing an 11.2% difference. However, the off resonance behavior exhibits peak broadening where the variation of intensity with wavelength, off resonance, has an experimental slope that is 3.7 times less steep than the computed model. Furthermore, the optical transmittance of the sample is 2.1 times higher than computationally modeled. It is shown that the nanostructures are thermodynamically stable in the projected environmental conditions and have an equilibrium temperature of 746.4 K. Upon review of the experimental optical setup, we conclude that thrust generation is not possible with continuous irradiation of light and propose a method of synchronous dynamic acceleration of nanoparticle propellant by use of a pulsed light beam.
机译:本研究的目的是制造和研究纳米/皮质疏水素推力发电的不对称,金属,纳米结构的特性和使用。对近红外光可见聚焦在亚波长纳米结构上,以在金属纳米结构的表面上产生电子的偏振振荡(表面等离子体极化子)。表面等离子体Polaritons加速纳米颗粒推进剂远离纳米结构,产生前一个先前数值模拟表明,不对称纳米结构可以在可见光谱内强烈产生强烈。这是有史以来第一个尝试的实验,首先成功地证明该共振,其中共振峰是λ= 830nm。实验光学表征的共振峰与我们计算的模型吻合良好,显示出11.2%的差异。然而,截止共振行为表现出峰值扩展,其中强度为波长,关闭共振的强度的变化具有比计算模型陡峭3.7倍的实验斜率。此外,样本的光透射率比计算模型高2.1倍。结果表明,纳米结构在突出的环境条件下热力稳定,并且具有746.4k的平衡温度。在审查实验光学设置时,我们得出结论,通过连续照射光并提出一种同步的方法是不可能的脉冲光束通过使用脉冲光束动态加速度纳米粒子推进剂。

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