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Supercontinuum Generation in Naturally Occurring Glass Sponges Spicules

机译:天然玻璃海绵骨针中的超连续谱产生

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摘要

The complex process of supercontinuum generation (SG) is known to be exploitable for designing spatially coherent white light sources emitting light simultaneously in the ultraviolet, visible, and infrared ranges. Herein the first natural material able to generate in laboratory conditions a supercontinuum similar to those known from man-made photonic crystal fibers is described. The ability resides in siliceous 20-50 cm long spicules of the glass sponge Sericolophus hawaiicus. By shedding into the spicules optical peak intensities ranging from 1 to 100 TW cm(-2) the generation of a SG is revealed. The SG involves wavelengths between 650 and 900 nm and shows a maximum spectral spread for excitation at a wavelength of 750 nm. It is hypothesized that the SG is favored by spicules being a biocomposite that incorporates together isotopically pure biogenic silica (delta(30) Si = -3.28) and 15.2 +/- 1.3 mu g N -acetyl-glucosamine (chitin) per mg of silica. The internal organization of these spicules is distinguished by a solid silica core with a 1 mu m wide axial channel as well as a highly ordered silica-chitin composite. Such a composition and organization pattern may be of potential interest for the design of low temperature synthesis of future materials for light guidance.
机译:众所周知,超连续谱产生(SG)的复杂过程可用于设计在紫外,可见和红外范围内同时发射光的空间相干白光源。本文描述了能够在实验室条件下产生与从人造光子晶体纤维已知的那些相似的超连续谱的第一天然材料。该能力存在于玻璃海绵丝猴(Sericolophus hawaiicus)的硅质20-50厘米长的针状物中。通过脱落到针状细胞的光学峰值强度范围从1到100 TW cm(-2),揭示了SG的生成。 SG涉及650至900 nm之间的波长,并显示了在750 nm波长处激发的最大光谱扩展。据推测,SG是受针刺的青睐,因为它是一种生物复合物,每毫克二氧化硅掺入了同位素纯净的生物二氧化硅(δ(30)Si = -3.28)和15.2 +/- 1.3μgN-乙酰氨基葡萄糖(甲壳素) 。这些针的内部组织的特点是具有1μm宽轴向通道的固体二氧化硅核以及高度有序的二氧化硅-甲壳素复合材料。这样的组成和组织模式可能对于未来光导材料的低温合成设计具有潜在的意义。

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