Light coherence properties in optical fibres and visual receptors
Abstract
The optical field on the end of an optical fibre can display
varying degrees of spatial coherence. The classical analyses of the
excitation of the fibre have relied on the assumptions that the
coherence properties of this field can be approximated by either perfect
coherence or total incoherence, and it has long been appreciated that
the resulting excitations are markedly different.
It is the purpose of the work presented in this thesis to
investigate the effects of differing degrees of coherence of this
excitation field. The investigation has been restricted in the main to
the bound or guided power of the fibre, and the prime consideration has
been of current practical communications fibres.
Chapter I provides some necessary background information for
the thesis and discusses the types of optical fibres to which the study
is applied.
Chapter II contains a discussion of the theory of partial
coherence. The history of optical coherence theory is summarised and
then the formal treatment of the theory is described. In the last part
of the chapter, an alternative representation of a partially coherent
field by an angular spectrum of plane waves is introduced. This is of
considerable importance, as it has been used extensively in the work
presented here in the framework of the geometric optics description of
optical fibre excitation. The need to normalise the power launched into an optical fibre
by a partially coherent source led to an investigation of the
diffraction of partially coherent light. This is contained in Chapter
III. After a discussion of the classical diffraction theory and of
previous studies of the diffraction of partially coherent light, a
vector formulation is presented, which is shown to have some advantages
over the previous analyses. The angular spectrum representation is then used to examine the problem, and shown to give some very informative, if
qualitative, results.
The central problem of the excitation of an optical fibre by a
partially coherent source is tackled in the next two chapters. In
Chapter IV the excitation mechanism is discussed in terms of both mode
theory and geometric optics. A general analysis for polychromatic
partially coherent sources is then developed and the limiting forms of
total coherence and total incoherence are derived. A quasimonochromatic
approximation is also obtained from this general result. A separate
derivation of the quasimonochromatic form is then presented. These
analyses are restricted to large V fibres, but are independent of the
fibre type.
In Chapter V, the quasimonochromatic analysis is applied to
the step index fibre, giving detailed results for V < 20 and asymptotic
expressions for V >> 1 and for the two extremes of total coherence and
total incoherence. A geometric optics treatment of the step index fibre
is then presented, and shown to be a good approximation for V ^ 10 and
for more incoherent excitations. The last part of the chapter examines
the excitation of both step and graded index fibres using a more general
and detailed geometric optics approach. This approach is shown to be
very powerful, and is used to examine both the bound and leaky powers
associated with the fibres.
Particular examples of excitations are considered in Chapter
VI. In the previous chapters, the source used was the optical field on
the end of the fibre, with no reference being made to specific physical
sources. In this chapter the two most important sources, the light
emitting diode (LED) and semiconductor laser, are examined with
reference to the results obtained in Chapter V, and with reference to
the common approximations used. The effect of a lens to increase the
coupling efficiency of the LED is also examined. The lens excitation in Chapter VI prompted the investigation
of the propagation of spatial coherence that appears in Chapter VII.
The propagation of the degree of spatial coherence along an optical
fibre is investigated first, and the phenomena of coherence enhancement
is shown to occur in this situation. The effect of the temporal coherence of the source, a reflection of the finite bandwidth of any
physical source, is briefly discussed. A study of the degree of
coherence in the image of a partially coherent object forms the last
part of this chapter. The simple rule used in Chapter VI is initially
derived from intuitive ideas, then shown to be supported by a more formal
approach, and finally proved by the use of Fourier theory.
The final chapter deals with the previously excluded small V
fibres. These are of relevance to communications systems, in the guise
of monomode fibres, and to vision research, where visual photoreceptors
have been successfully modelled by small V optical waveguides. The
relevance of the partially coherent excitation theories developed in
this thesis is discussed with reference to these two examples of small V
fibres.
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