论文标题

自组装和激光结晶的光发射的光发射

Light emission from self-assembled and laser-crystallized chalcogenide metasurface

论文作者

Wang, Feifan, Wang, Zi, Mao, Dun, Chen, Mingkun, Li, Qiu, Kananen, Thomas, Fang, Dustin, Soman, Anishkumar, Hu, Xiaoyong, Arnold, Craig B., Gu, Tingyi

论文摘要

亚波长度周期性限制可以集体,有选择地增强局部光强度,并在纳米尺度上控制光诱导的相变。标准的纳米化过程可能导致光相变的材料(尤其是硫藻源)的几何和组成不均匀性,因为这些材料的化学和热稳定性较差。在这里,我们通过利用与溶液处理的膜相关的流体特性,在这里证明了具有共振增强的光发射的自我组装的平面硫化硫化剂纳米结构阵列,以增强光发射,从而创建全dielectric光学元图。图案化的硅膜是塑造清质化元素跨表面结构的模板。溶液处理的砷硫化物跨表面结构是在悬浮的250 nm硅膜模板中自组装的。周期性的纳米结构显着体现了局部光 - 物质相互作用,例如入射光子的吸收,拉曼发射和光致发光。同样,热分布会通过边界和光热结晶过程进行修饰,从而导致在田间增强区域内形成各向异性纳米发射体。该杂种结构显示了波长选择性各向异性光致发光,这是周期性纳米结构中共振模式集体响应的特征行为。共振增强的percell效应可以表现出局部光发射的量子效率。

Subwavelength periodic confinement can collectively and selectively enhance local light intensity and enable control over the photo-induced phase transformations at the nanometer scale. Standard nanofabrication process can result in geometrical and compositional inhomogeneities in optical phase change materials, especially chalcogenides, as those materials exhibit poor chemical and thermal stability. Here we demonstrate the self-assembled planar chalcogenide nanostructured array with resonance enhanced light emission to create an all-dielectric optical metasurface, by taking advantage of the fluid properties associated with solution processed films. A patterned silicon membrane serves as a template for shaping the chalcogenide metasurface structure. Solution-processed arsenic sulfide metasurface structures are self-assembled in the suspended 250 nm silicon membrane templates. The periodic nanostructure dramatically manifests the local light-matter interaction such as absorption of incident photons, Raman emission, and photoluminescence. Also, the thermal distribution is modified by the boundaries and thus the photo-thermal crystallization process, leading to the formation of anisotropic nano-emitters within the field enhancement area. This hybrid structure shows wavelength selective anisotropic photoluminescence, which is a characteristic behavior of the collective response of the resonant guided modes in a periodic nanostructure. The resonance enhanced Purcell effect could manifest the quantum efficiency of localized light emission.

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