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首页> 外文期刊>Scientific reports. >Biologically inspired flexible quasi-single-mode random laser: An integration of Pieris canidia butterfly wing and semiconductors
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Biologically inspired flexible quasi-single-mode random laser: An integration of Pieris canidia butterfly wing and semiconductors

机译:受生物启发的柔性准单模随机激光器: Pieris canidia 蝴蝶翼与半导体的集成

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Quasi-periodic structures of natural biomaterial membranes have great potentials to serve as resonance cavities to generate ecological friendly optoelectronic devices with low cost. To achieve the first attempt for the illustration of the underlying principle, the Pieris canidia butterfly wing was embedded with ZnO nanoparticles. Quite interestingly, it is found that the bio-inspired quasi-single-mode random laser can be achieved by the assistance of the skeleton of the membrane, in which ZnO nanoparticles act as emitting gain media. Such unique characteristics can be interpreted well by the Fabry-Perot resonance existing in the window-like quasi-periodic structure of butterfly wing. Due to the inherently promising flexibility of butterfly wing membrane, the laser action can still be maintained during the bending process. Our demonstrated approach not only indicates that the natural biological structures can provide effective scattering feedbacks but also pave a new avenue towards designing bio-controlled photonic devices.
机译:天然生物材料膜的准周期结构具有巨大的潜力,可以用作谐振腔,从而以低成本产生生态友好的光电器件。为了实现对基本原理的首次尝试,Pieris canidia蝴蝶翼嵌入了ZnO纳米颗粒。非常有趣的是,发现生物启发的准单模随机激光可以通过膜的骨架来实现,其中ZnO纳米粒子充当发射增益介质。这种独特的特征可以通过蝴蝶翅膀的窗状准周期结构中存在的Fabry-Perot共振很好地解释。由于蝶形翼膜固有的柔韧性,在弯曲过程中仍可保持激光作用。我们证明的方法不仅表明天然生物结构可以提供有效的散射反馈,而且还为设计生物控制的光子器件铺平了新途径。

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