Micro-structured optical fibers

Optical waveguides – Optical fiber waveguide with cladding – Utilizing multiple core or cladding

Reexamination Certificate

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C385S123000, C065S411000, C065S428000

Reexamination Certificate

active

06775450

ABSTRACT:

FIELD OF THE INVENTION
The invention relates to a class of micro-structured optical fibres known as photonic crystal fibres (PCFs), holey fibres (HFs) and generic micro-structured optical fibres and to methods of making them. Optical fibres are used, for example, in optical communications networks to carry optical communication signals.
BACKGROUND TO THE INVENTION
Conventional step-index optical fibres typically comprise a central core of relatively high refractive index material, surrounded by a cladding of relatively low refractive index material, encased in a protective jacket. Light is confined to the core by total internal reflection as a result of the step difference in refractive index between the core and the cladding.
In contrast to conventional step-index fibres, PCFs and HFs typically comprise one material that is provided with periodic features in the cross section of the fibre, transverse to the propagation direction. These features are generally air holes which run along the length of the fibre. The periodic features define a lattice, and the fibre is characterised by the lattice pitch and the shape, typically the hole diameter, of the periodic features.
In the case of solid core PCFs, a central defect is created by removing or altering hole(s) along the length of the fibre at the centre. The effective refractive index of the surrounding material is reduced as a result of the presence of the periodic features. Removing a hole completely from the centre creates a central defect whose effective refractive index is larger than the surrounding fibre material. Therefore, in a manner analogous to a step-index fibre, light is confined to the central defect by total internal reflection due to the step change in refractive index contrast between the central defect and the surrounding material. Hence, to continue the analogy, the central defect effectively acts as the core region and the surrounding material as the cladding region. Such PCFs are often known as holey fibres.
Illustrated in
FIG. 1
is a typical holey fibre comprising fibre material
20
, periodically arranged air channels
22
, a central solid core region
24
and a cladding region
26
.
Periodic features within the cross section of the fibre can produce band gap effects controlling the light frequencies that are permitted to propagate within the same cross sectional plane of the fibre. Within the band gap no allowed modes exist. In general, the lattice pitch, the periodic feature's size and shape, and the contrast between the periodic feature and the embedding host material refractive index determine whether a photonic band gap, (PBG) exists. More than two materials can be used to create a PBG material. In the case of hollow core PCFs, the central defect may be created by an oversized hole. The defect can create an allowed state in the band gap that allows light to propagate along the central defect of the fibre, but which is also simultaneously confined to the core by the surrounding PBG material. The defect is often, but not necessarily, an air hole. This is the reverse of a step-index fibre where the light is confined to a medium that is more optically dense.
At present, PCFs are generally made by the sequential size reduction of micro structured optical fibre preform frequently containing suitably, often geometrically, arranged cylindrical air channels running the length of the fibre. Sequential size reduction is usually achieved by pulling an end of the preform that has been heated until plastic in a furnace. The preforms may be made by either systematically stacking together a bundle of suitable capillary tubes, with or without a solid central rod to form a solid core as appropriate, or by drilling a block of fibre material.
However, the difficulties associated with making PCFs by such methods, notably in terms of maintaining cleanliness and uniformity and the associated resolution issues, means that there is a limit on the length of PCFs that can be produced. Uniformity is a particular problem, and unless the size reduction process is very carefully controlled, hole collapse may occur, leading to distortion. At present, although solid core PCFs may be produced in lengths of several kilometers; hollow core PCFs may be produced in lengths of several meters at most.
So-called “fibre fusing” is a phenomenon, akin to the behavior of overloaded electrical metal fuse wire, where the material of the optical fibre melts and the melting propagates, thereby consuming fibre as it proceeds. It is known that fibre fusing can be initiated by shocking an end of the fibre say with heat or impact.
Multiple core optical fibres are generally fabricated by fusing together multiple, parallel strands of core material and a cladding material so as to embed the cores in the cladding, thereby providing a multiple core fibre preform. The preform is then size reduced down to the required dimensions by heating it until plastic and pulling one end.
Current PCFs are limited to two dimensional lattice structures because no known method has been proposed to make the periodic features anything other than continuous along the whole length of the fibre material. At present, use of PCFs is limited to optical gain, harmonic generation, continuous generation and enhanced fibre lasers. It is not possible to write a Bragg grating into an air core and the introduction of an active material in the air core region destroys the photonic band gap confinement.
OBJECT OF THE INVENTION
An object of the invention is to provide a method of making micro-structured optical fibres, including, but not limited to, PCFs, and HFs in long lengths.
BRIEF DESCRIPTION OF THE INVENTION
According to a first aspect, the invention provides a method of making a micro-structured optical fibre precursor comprising the step of size reducing a multiple core optical fibre having solid multiple cores.
Typically, a multiple core optical fibre will have forty cores, although other numbers of cores are equally feasible.
According to a second aspect the invention provides a method of making a micro-structured optical fibre precursor comprising the step of size reducing a multiple core optical fibre preform having solid multiple core preforms.
Having solid cores or core preforms overcomes many of the difficulties previously associated with the size reduction process in micro-structured optical fibre fabrication. For example, the absence of air channels during the process means that the problems of channel collapse and fibre fragility are negated, and core size can be controlled with relative ease. Overall, uniformity can be attained over much longer lengths of fibre. However, if the fibre is ultimately to have air channel periodic features, a method is required of removing the solid cores.
According to a third aspect the invention provides a method of making a micro-structured optical fibre comprising the step of inducing a fibre fuse in at least one of the cores of a multiple core optical fibre precursor having multiple solid cores. The term fibre fuse as used in this context means not only fibre fuse in the sense described in the background but to any effect that results in the partial or total consumption of the solid cores.
The dimensions of the optical fibre will be determined according to its intended application and wavelength of operation.
The effect of the fibre fuse may be to consume the core along the whole length of the fibre thereby creating a continuous channel in the fibre material. Hence, the periodic lattice resulting from the creation of a periodic arrangement of channels will have two-dimensional characteristics. Alternatively, the effect of the fibre fuse may be to consume periodically spaced lengths of core along the whole length of the fibre thereby to create periodically discontinuous channels. Discontinuous channels can lead to the creation of a lattice with three-dimensional characteristics in the fibre material.
A fibre fuse may or may not be induced in the central core or cores according to whether a solid or hollow core micro-structured optic

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