Optical Bit Error Rate

Chapter 2.12.6 - Fiber Attenuation and Power Loss

2.12.6   Fiber Attenuation and Power Loss

Fiber consists of optically transparent matter that, like any other matter, absorbs
and scatters part of the optical power of light due to impurities in it, imperfections,
and refractive index fluctuations. The total optical power lost in fiber is termed at-
tenuation
. However, power attenuation is also a function of the propagating frequency.

There are also additional mechanisms that contribute to optical power loss. The
sum of all losses is clearly measured by subtracting the power out from the power
of the fiber. This is termed fiber loss (many times used interchangeably with power
attenuation). Fiber loss, for a given optical power P(0) launched into the fiber, affects
the total power arrived at the receiver, Pr. Based on this, fiber loss limits the
fiber span, Lmax, without amplification, and/or determines the required amplification
gain.


Figure 2.10. Single-mode fiber attenuation as a function of wavelength.


For a fiber with optical power attenuation constant α(λ), the optical power attenuation
at a length L is expressed as

 

In this relationship, if we replace P(L) with the minimum acceptable power at the
receiver, Pr, then the (ideal) maximum fiber length is

 

In subsequent sections, we will see that there are additional limiting factors (e.g.
dispersion and bit rate) that further limit the (ideal) maximum fiber length.

In general, the optical power attenuation constant, α(λ), is nonlinear and depends
on the wavelength:

 

where C1 is a constant (due to Rayleigh scattering), C2 is a constant due to fiber imperfections,
and A(λ) is a function that describes fiber-impurity absorption as a function of wavelength.

The optical power attenuation constant of a fiber (measured in dB/km) is typically
plotted as a function of the wavelength (Figure 2.10).

Conventional single-mode fibers have two low attenuation ranges—one at about
1.3 μm and another at about 1.55 μm. Between these two and at about 1.4 μm there
is a high-attenuation range (1350–1450 nm with peak at 1385 nm) due to the OH
radical. ITU-T G.652 recommends losses less than 0.5 dB/km in the region 1310
nm, and less than 0.4 dB/km in the region 1500 nm.*

___________________________________________
*Recently, low-water-peak fiber has been produced that allows the full spectrum from under 1300 to
over 1600 nm to be utilized.

 

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