Optical Bit Error Rate

Chapter 4 - Overview of DWDM Devices and Networks

4.1   INTRODUCTION

In previous chapters, we examined the nature of light and how it interacts with matter
as it travels throught it. We also examined how light can be generated with laser
devices, how it can be detected, and how it is transmitted through an optically transparent
medium, the fiber. We also mentioned in passing a technology that we called
dense wavelength division multiplexing (DWDM). With DWDM technology,
many optical channels, each at a different wavelength and separately modulated,
can be multiplexed and transmitted in the same fiber, thus increasing the aggregate
transported bandwidth to astonishing levels that exceed terabits per second.
DWDM communications systems require specialized optical and photonic components
that are based on light–matter and light–matter–light interactions as well as
on the propagation properties of light. These components provide an equivalent
functionality of their electrical/electronic counterparts, such as transmitters, receivers,
filters, modulators, amplifiers, add/drop multiplexers, cross-connect devices,
couplers and so on. Thus, with many optical channels in the same fiber and
new components, new phenomena emanate that further degrade the signals due to
photon–matter–photon interaction. In this chapter, we review the components that
enable this technology, the ramifications of having many optical channels (or
DWDM) in the same fiber, and how DWDM technology is employed in modern optical
communications networks.

At the outset of this chapter we need to define certain parameters relevant to all
optical components and which will be mentioned repeatedly.

Insertion Loss (IL) is defined as the optical power lost due to the intervention of
an optical component, or as the ratio of power in to power out. IL is measured in
dB, and its mathematical definition is –10 log (Pin/Pout), where the photonic power
is in milliwatts. Insertion loss reduces the optical signal amplitude and it is additive.
Over a complete path, many components, connectors, and splices remove some of
the signal power due to IL, which contributes to the overall power loss. If the total
power loss exceeds the budgeted power, then amplification is required. Thus, the
desirable value of insertion loss is near zero. In communications, lower insertion
loss allows longer transmission distance before signal amplification and thus fewer
amplifiers and reshapers, and, consequently, less maintenance and lower cost.

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