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Playing with light in diatoms: small water organisms with a natural photonic crystal structure

机译:在硅藻中玩光:小水生物,具有天然光子晶体结构

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Complex micro- and nano-structured materials for photonic applications are designed and fabricated using top technologies. A completely different approach to engineering systems at the sub-micron-scale consists in recognizing the nanostructures and morphologies that nature has optimized during life's history on earth. In fact, biological organisms could exhibit ordered geometries and complex photonic structures which often overcome the products of the best available fabrication technologies. An example is given by diatoms. They are microalgae with a peculiar cell wall made of amorphous hydrated silica valves, reciprocally interconnected in a structure called the frustule. Valve surfaces exhibit specie-specific patterns of regular arrays of chambers, called areolae, developed into the frustule depth. Areolae range in diameter from few hundreds of nanometers up to few microns, and can be circular, polygonal or elongate. The formation of these patterns can be modeled by self-organised phase separation. Despite of the high level of knowledge on the genesis and morphology of diatom frustules, their functions are not completely understood. In this work, we show that the silica skeletons of marine diatoms, characterized by a photonic crystal-like structure, have surprising optical properties, being capable of filtering and focalizing light, as well as exhibiting optical sensing capabilities.
机译:用于光子应用的复杂的微型和纳米结构材料采用顶级技术设计和制造。在亚微米尺度上的一种完全不同的工程系统方法,包括纳米结构和形态,即自然在地球生命历史中优化的纳米结构和形态。实际上,生物体可以表现出有序的几何形状和复杂的光子结构,这些结构通常克服了最佳的制造技术的产品。硅藻给出了一个例子。它们是微藻,具有由非晶水合硅阀制成的特殊细胞壁,在称为截肢的结构中往复式互连。阀门表面表现出特定的常规室阵列,称为isolae,发展为截至截至截至截至截至的深度。直径从几百纳米的直径范围高达几微米,并且可以是圆形的,多边形或细长的。这些图案的形成可以通过自组织相分离进行建模。尽管关于硅藻截肢的成因和形态的知识高,但它们的功能并不完全理解。在这项工作中,我们表明海水硅藻的二氧化硅骨架,其特征在于光子晶体状结构,具有令人惊讶的光学性质,能够过滤和聚焦光,以及表现出光学传感能力。

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