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Experimental and Theoretical Investigation of Macro-Periodic and Micro-Random Nanostructures with Simultaneously Spatial Translational Symmetry and Long-Range Order Breaking

机译:宏观定期和微随机纳米结构的实验与理论研究,具有同时空间平移对称和远程顺序断裂

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Photonic and plasmonic quasicrystals, comprising well-designed and regularly-arranged patterns but lacking spatial translational symmetry, show sharp diffraction patterns resulting from their long-range order in spatial domain. Here we demonstrate that plasmonic structure, which is macroscopically arranged with spatial periodicity and microscopically constructed by random metal nanostructures, can also exhibit the diffraction effect experimentally, despite both of the translational symmetry and long-range order are broken in spatial domain simultaneously. With strategically pre-formed metal nano-seeds, the tunable macroscopically periodic (macro-periodic) pattern composed from microscopically random (micro-random) nanoplate-based silver structures are fabricated chemically through photon driven growth using simple light source with low photon energy and low optical power density. The geometry of the micro-structure can be further modified through simple thermal annealing. While the random metal nanostructures suppress high-order Floquet spectra of the spatial distribution of refractive indices, the maintained low-order Floquet spectra after the ensemble averaging are responsible for the observed diffraction effect. A theoretical approach has also been established to describe and understand the macro-periodic and micro-random structures with different micro-geometries. The easy fabrication and comprehensive understanding of this metal structure will be beneficial for its application in plasmonics, photonics and optoelectronics.
机译:光子和等离子体拟替替代术,包括设计良好的设计和规则的图案但缺乏空间平移对称性,显示出由它们在空间域中的远程顺序产生的尖锐衍射图案。在这里,我们证明了具有空间周期性和由随机金属纳米结构进行的空间周期性和显微镜地构建的等离子体结构,也可以通过实验表现出衍射效果,尽管两者同时在空间域中被破坏了两者。具有策略性预形成的金属纳米种子,通过使用具有低光子能量的简单光源和低光源,通过光子驱动的生长来制造由微观随机(微随机)纳米层的银结构的可调谐宏观定期(宏观周期性)型图案。低光功率密度。通过简单的热退火可以进一步修改微结构的几何形状。虽然随机金属纳米结构抑制了折射率的空间分布的高阶浮子光谱,但在整体平均后,保持的低位浮子光谱负责观察到的衍射效果。也建立了一种理论方法来描述和理解具有不同微观几何形状的宏观定期和微随机结构。对这种金属结构的易于制造和全面的理解将有利于其在血浆,光子和光电子中的应用。

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