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A programmable nanoreplica molding for the fabrication of nanophotonic devices

机译:用于制造纳米光电装置的可编程纳米载成型

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The ability to fabricate periodic structures with sub-wavelength features has a great potential for impact on integrated optics, optical sensors, and photovoltaic devices. Here, we report a programmable nanoreplica molding process to fabricate a variety of sub-micrometer periodic patterns using a single mold. The process utilizes a stretchable mold to produce the desired periodic structure in a photopolymer on glass or plastic substrates. During the replica molding process, a uniaxial force is applied to the mold and results in changes of the periodic structure, which resides on the surface of the mold. Direction and magnitude of the force determine the array geometry, including the lattice constant and arrangement. By stretching the mold, 2D arrays with square, rectangular, and triangular lattice structures can be fabricated. As one example, we present a plasmonic crystal device with surface plasmon resonances determined by the force applied during molding. In addition, photonic crystal slabs with different array patterns are fabricated and characterized. This unique process offers the capability of generating various periodic nanostructures rapidly and inexpensively.
机译:制造具有子波长特征的周期性结构的能力具有对集成光学,光学传感器和光伏器件的影响的巨大潜力。这里,我们报告了一种可编程纳米普利生成工艺,用于使用单个模具制造各种子微米周期性图案。该方法利用可拉伸模具在玻璃或塑料基材上的光聚合物中产生所需的周期性结构。在复制成型过程中,将单轴力施加到模具上并导致周期性结构的变化,其在模具的表面上。力的方向和幅度决定了阵列几何形状,包括晶格常数和布置。通过拉伸模具,具有方形,矩形和三角形晶格结构的2D阵列。作为一个示例,我们提出了一种具有表面等离子体谐振的等离子体晶体装置,该等离子体谐振由模制期间施加的力确定。另外,制造具有不同阵列图案的光子晶板被制造和表征。这种独特的方法提供了快速且廉价地产生各种周期性纳米结构的能力。

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