Conferences
We support a range of technical conferences, providing opportunities for industry professionals to participate in the advancement of our field and to network.
Silicon-core optical fibres represent a convergence of semiconductor photonics and conventional fibre technology, embedding a crystalline silicon or silicon–germanium alloy core within a glass cladding. Here we report a crystallographic study of the material...
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We support a range of technical conferences, providing opportunities for industry professionals to participate in the advancement of our field and to network.
Polycrystalline silicon core optical fibers have been fabricated by modified thermal annealing of amorphous silicon chemically deposited at high pressure. The resulting fibers have small-diameter
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In this paper, we investigate a range of tapered silicon optical fibers, fabricated to have varying core dimensions, and report the first characterization of the crystallographic properties of their re
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By harnessing the unique optical properties of the crystalline silicon core directly within the fiber geometry, it is possible to imagine compact and low power nonlinear systems that are immediately
Silicon photonics has developed into a mainstream technology driven by advances in optical communications. The current generation has led to a proliferation of integrated photonic
Over the past two decades silicon core fibers (SCFs) have emerged as a promising platform for use in nonlinear photonic applications. By harnessing the unique optical properties of the crystalline silicon
Crystalline silicon is a critically important electronic material in all consumer electronic products. The ability to create fibers from this material would open up exciting vistas for a new generation of fiber
The ability to produce crystalline silicon core fibre out of inexpensive aluminium and silica could pave the way for a simple and scalable method of incorporating silicon-based electronics and
Silica fibers are gaining immense popularity across various industries, particularly in high-performance optical applications. These fibers, primarily composed of silicon dioxide (SiO₂), offer
Special Issue Information Crystalline fibers, referring to those fibers with crystalline core structures, represent a rapidly progressing field of specialty fiber optics and applications. This special kind of
In this paper, we review current progress in the nonlinear application of silicon-based optical fibers from telecom wavelengths into the mid-infrared. Particular attention is paid to dispersion
This paper reviews the past, present and prospective future of silicon optical fibres. The incorporation of silicon with its rich optoelectronic functionality into existing glass fibre technologies...
This review discusses the state-of-the-art regarding the production of silicon optical fibres in amorphous and crystalline form and then looks at the post-processing techniques and the
Low-loss silica optical fibers, semiconductor lasers and erbium-doped fiber amplifiers lay the foundations of the modern optical communications. In addition to primarily transporting the
Specific to crystalline Group IV semiconductors, the first generalized efforts originated from the Pennsylvania State University/Southampton University team using high pressure microfluidic
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The integration of these fibers with optical circuits, lasers and photonic crystals offers a wide variety of applications. In this perspective, the role of
This review examines progress in the development of glass-clad, crystalline core fibres, with an emphasis on semiconducting cores.
Semiconductor core optical fibers with a silica cladding are of great interest in nonlinear photonics and optoelectronics applications. Laser crystallization has been recently demonstrated for
In this chapter, we will introduce the development history, manufacturing, optical properties, and applications of silicon-based optical fibre in detail.
With so many recent developments in silicon-based optoelectronics and fiber optic systems, it seems silicon will be the element not just associated with the technological developments
Maintaining fiber-optic communication systems'' efficiency requires controlling optical loss. To decrease impurities and structural flaws in optical fibers and lessen the effect of absorption and
Photonic crystal fibers may be considered a subgroup of a more general class of microstructured optical fibers, where light is guided by structural modifications, and not only by refractive index differences.
As an anniversary review for the International Year of Glass, we examine the evolution of communication fiber materials including multicomponent glasses, which were expected to replace
Laser crystallization has been recently demonstrated for crystallizing amorphous silicon fibers into crystalline form. Here we explore the underlying mechanism by which long single-crystal silicon