Fiber-optic communication
Sending information as pulses of light down a hair-thin thread of ultra-pure glass, which traps the light by total internal reflection and carries it for kilometres with almost no loss. One fiber can carry more conversations than a thick bundle of copper.
الأرشيف العميق مكتوب بالإنجليزية حتى الآن — والترجمات المتحقَّق منها جزء من خارطة الطريق. خاصية الترجمة في متصفحك تعمل جيدًا في هذه الصفحة.

✦ مهلًا، حقًّا؟
In 1966 Charles Kao argued that the glass of the day, which lost 99 percent of its light within about twenty metres, was not hitting a law of physics — it was merely dirty. Remove the traces of iron and other metals, he said, and a fiber could carry light a full kilometre while keeping one part in a hundred: a target of 20 decibels per kilometre. Almost no one believed a fiftyfold cleanup was possible. Four years later a Corning team hit 17 dB/km. Kao received the Nobel Prize in Physics in 2009.
ما هو
A fiber-optic line is a thread of glass, about the width of a human hair, that holds light in the way a pipe holds water. The core is glass of one refractive index; a cladding of slightly lower index wraps it, so a ray travelling at a shallow angle keeps striking the boundary and keeps reflecting perfectly back inside — total internal reflection — instead of leaking out. Flash a laser on and off at the near end and the flashes travel the whole length; a detector at the far end reads them back as ones and zeros. Because you can flash light billions of times a second, a single fiber carries an enormous river of information.
لماذا كان مهمًّا
Copper carries signals as electrical current, and current fades and picks up interference; long lines needed repeaters every kilometre or two and could only carry so many calls at once. Glass fiber changed the arithmetic entirely: far higher capacity, immunity to electrical noise, and — once it was pure enough — repeaters tens of kilometres apart instead of every mile. Essentially all long-distance telephony and the entire backbone of the internet run on light in glass. The undersea cables that stitch the continents together are fiber. Without low-loss fiber there is no cheap, global, high-bandwidth network.
ما الذي أتاحه
Fiber is the physical spine of the connected world: transoceanic cables, the links between data centers, and increasingly the line into the home. It made bandwidth cheap enough that streaming video, cloud computing, and instant global communication became ordinary. The same drive for flawless glass and precise light-guiding also gave medicine the endoscope and the surgical laser delivery fiber, and gave sensing a family of fiber instruments that measure strain, temperature, and rotation. All of it rests on Kao's insight that the limit was dirt, not nature.
أدنى نسخة صالحة للعمل
A step-index fiber: a core of high-purity glass surrounded by a cladding of glass with a slightly lower refractive index, so light entering one end at a shallow enough angle bounces along the boundary the whole way. A lamp or, better, a laser or LED feeds pulses in; a photodetector reads them out the far end. Encode the bits as light-on / light-off.
هذا المدخل في انتظار سرده الكامل — رسّامو الخرائط يعملون عليه. أما موضعه في الشبكة فمُتحقَّق منه بالفعل.
أتاح
تخوم — لم يُدوَّن بعده شيء بعد.
المصادر
- — K. C. Kao and G. A. Hockham, 'Dielectric-fibre surface waveguides for optical frequencies,' *Proceedings of the IEE*, vol. 113, no. 7 (1966), pp. 1151–1158
- — Charles K. Kao, Nobel Lecture, 'Sand from Centuries Past: Send Future Voices Fast' (2009)
- — Jeff Hecht, *City of Light: The Story of Fiber Optics* (1999)
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