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Towards the clarity limit in optical fibre

机译:走向光纤的清晰度极限

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An important scientific and technological goal in the field of optical communications is the achievement of the clarity limit in optical fibres-that is, ensuring that the SiO_2 glass from which fibres are made is as transparent as possible. The clarity of the wavelength transmission window (and the width of that window) in existing fibres is already sufficient to form the basis of a world-wide optical communication system, yet it is still limited by contamination of the fibre by water. Here we measure the spatial distribution of water in the glass rods from which optical fibres are drawn and explain the distribution quantitatively with a mathematical model of diffusion in a medium with essentially perfect cylindrical symmetry. Our analysis shows that the water enters from the outside of the rod and diffuses into the molten, flowing glass much faster than is expected from extrapolation of low-temperature measurements. Our elucidation of the physics underlying the contamination process has already led to the fabrication of dry fibres, which have a clarified and broadened communications window. The improved operational range of wavelengths should yield applications for new lasers, optical amplifiers and detectors, and should substantially increase the information-carrying capacity of optical communications systems.
机译:光通信领域的一项重要科学技术目标是实现光纤的清晰度极限,即确保制成纤维的SiO_2玻璃尽可能透明。现有光纤中波长传输窗口的清晰度(以及该窗口的宽度)已经足以构成世界范围内光通信系统的基础,但仍然受到光纤对水的污染的限制。在这里,我们测量从中抽出光纤的玻璃棒中水的空间分布,并使用在具有基本完美的圆柱对称性的介质中扩散的数学模型来定量解释分布。我们的分析表明,水从棒的外部进入并扩散到熔融的流动玻璃中,其速度比低温测量的推断要快得多。我们对污染过程背后的物理原理的阐明已经导致了干纤维的制造,干纤维的澄清和扩大了沟通的窗口。改进的波长工作范围应能为新型激光器,光放大器和检测器带来应用,并应大大提高光通信系统的信息承载能力。

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