Friday, 20 January 2012

Photonics West 2012 Product Presentation by Dr Andy Gillooly: RGB - UV Fibers

Broadband Fibers for use at 305 nm - 450 nm and 450 nm - 800 nm




With the growing use of fibers in Medical and Spectroscopy applications, the need to transmit red, green and blue light down a single fiber is an increasingly important requirement.


The broadband performance of the Fibercore SM450 specialty singlemode fiber is perfect for these applications where the high NA insures that, even with the fiber coiled, bend-losses are kept to a minimum across the full broadband range, from 450 nm to 800 nm. The all-silica SM300-SC and SM400-SC fibers extend the wavelength range into the UV and are ideal for use from 305 nm to 450 nm, where the absense of Germania in their core significantly reduces photodarkening at blue and UV wavelengths.





Our second presentation at this year's Photonics West Exhibition in San Francisco will be showcasing these fibers, so if you are attending the show and want to know more, then come along to North Hall D, Demo Area 2, at 4.30 pm on Tuesday 24th January 2012 where Dr Andy Gillooly will introduce the fibers to you. Alternatively, visit our website at http://www.fibercore.com/

Friday, 13 January 2012

Photonics West 2012 Product Presentation by Dr Andy Gillooly: SM-P Polyimide Coated SM Fibers

New Polyimide Coated Singlemode Fiber for Embedded and High Temperature Applications


Optical fiber sensors have been widely adopted into a range of sensing technologies including discrete and continuous temperature, pressure and strain sensors often used in relatively benign environments. Typically these sensors have been used in pipeline monitoring, perimeter monitoring, heat detection and structural monitoring systems, all of which operate within the -45 degrees C to +85 degrees C temperature range of a standard optical fiber.


As industries push their sensing requirements into the high temperature environments in oil wells and nuclear reactors or into the tight coil requirements for hydrophones and seismic sensing geophones, optical fibers start to offer major technical benefits over electronic sensors. Fibers can be designed to tolerature the high temperatures and pressures found in oil wells, they can be radiation tolerant for nuclear environments, are immune to the high levels of electro-magnetic interference (EMI) associated with large industrial machinery and they do not require electrical power at the sensing element - particularly important for subsea reliability.


Extracting oil and gas from wells has become increasingly difficult and fiber sensors are being used more and more to enhance oil recover. The downhole environment of this industry is extremely aggressive with temperatures exceeding 300 degrees C and, whilst a high temperature acrylate coating can be used for applications working at around 150 degrees C, demand a fiber with a high-performance coating.


Fibercore's high NA, bend-insensitive specialty singlemode fibers are already widely used in sensor application all over the world and we have built on this technology to offer a new range of polyimide coated, bend-insensitive singlemode fiber, specifically designed for the seismic sensors and distributed sensors used in these highly challenging environments of the oil and gas explorations industries and other similar industries. Using the polyimide coating of our HB-P polarization maintaining fibers, these singlemode fibers offer the same bend insensitivity and photosensitivity of our high NA SM fibers with the added advantage of being able to withstand short-term temperatures as high as 400 degrees C (and 300 degrees C continuous).


Our first Product Presentation at this year's Photonics West Exhibition in San Francisco will be showcasing this new range of fibers, so if you are attending the show and want to know more, then come along to North Hall D, Demo Area 2, at 11.30am on Tuesday 24th January where Dr Andy Gillooly will introduce the fibers to you. Alternatively, visit our website, http://www.fibercore.com/, to obtain details and download our white paper.

Monday, 9 January 2012

Photonics West 2012












With Photonics West 2012 just two weeks away, Fibercore Ltd are pleased to announce that, once again, we will be exhibiting at this, the World's largest photonics and laser event. As well as being available to discuss the wide variety of specialty singlemode fibers that we offer, ranging from the World famous and market leading reduced-clad HiBi PM fibers to our all-glass Er/Yb co-doped dual-clad cladding pump fiber for high power amplifiers, Dr Andy Gillooly will be making two presentations during the event to highlight our recent product additions to our specialty singlemode fiber ranges.


Our first presentation announces the arrival of a new range of polyimide-coated singlemode fibers designed for embedded and high-temperature applications. Based on our SM1500 fibers, they combine the bend-insensitivity and intrinsic photosensitivity of these high NA singlemode fibers with the polyimide-coating of our HB-P fibers, enabling them to withstand temperatures as high as 400 degrees C (or 300 degrees C continuous), and making them ideal for the highly challenging environments of industries like oil and gas explorations.



The design wavelengths of the fibers in our specialty singlemode fiber range start as short as 450nm for tranmission in the UV to the Red range, and our all-silica SM-SC fibers offer even shorter wavelengths of 300nm to 400nm. Our second presentation concentrates on these R(ed), G(reen),B(lue) fibers and their use in spectroscopy, biotechnology and LDA applications.



So if you would like to know more about our fibers and how they can help your applications, visit us at Photonics West 2012 Booth 4926, which will take place at the Moscone Center, San Francisco, from 24th to 26th January 2012.

Friday, 23 December 2011

After 30 years in business, there's a Lot More to Fibercore than just Gyro Fibers!

The results of a very recent telephone survey have indicated that many of you only know us for our HB-G Bow-Tie FOG Fibers - and with more than 1,300,000 m of HB800G and HB1500G shipped out of Fibercore House each and every month, the reasons for this impression are very clear indeed. Fibercore's dominant position within the FOG industry certainly confirms both the class-leading performance of our Bow-Tie PM Fiber in any Interferometric sensor (not just gyros) and our unmatched experience in the manufacture of complex Specialty Fiber to tight tolerances and in very high volumes - but we do an awful lot more than just gyro fibers.

A Wider Range of Polyimide Coated Fibers for Harsh Environment Applications
After many years of promise, fiber sensors designed to increase the productivity of oil wells, enhance the efficiency of extraction and even assist the discovery of new reserves are now starting to become accepted by the Industry and are being deployed commercially. Go to our website and you will find an expanded range of SM-P Polyimide Coated Fibers, designed for both 'Down-hole' and other Harsh Environment application. And remember, Fibercore SM-P fibers were originally designed and have evolved over our 30 year history, specifically for sensor application. Not only do they deliver exceptional resistance to bend-induced loss, but the '5.3' and '4.2' variants also offer significant intrinsic photosensitivity, greatly simplifying the inscription of the Fiber Bragg Grating upon which many sensor designs now depend.

Enhanced Efficiency IsoGain™ Erbium Doped Fiber
After the Telecoms crash, many people seem to have dismissed erbium doped fibers as mere commodities, undifferentiated and selected only on the basis of price. But in a high competitive marketplace, even the smallest changes can have a big impact - we have recently made improvements to increase the efficiency of our well-established IsoGain™ I-4 and I-6 fibers and head-to-head evaluations have shown enhanced conversion efficiency for these fibers, reconfirming IsoGain™'s class leading performance. The difference is small, but consistent and meaningful, enabling some users to use less costly pump diodes, or to under-run existing pumps to increase reliability - and confirmed by sales of IsoGain™ into China more than doubling!

Increased Interest in 'RGB' Applications
Whilst volume demand is nowhere near the levels that we see for most sensor fibers, interest in fibers capable of transmitting from the UV through to red, for use in diagnostic probes, continues to grow at a steady pace and R(ed)G(reen)B(lue) fibers will be the subject of a special Product Showcase, delivered by Fibercore's Dr Andy Gillooly at Photonics West in January 2012. The development of these fibers, and the extension of the silica-core technology to PM continues.

So after 30 years of Fibercore, what's new for 2012 - simple:
A wider range of Polyimide-Coated Fibers for Harsh Environments, Enhanced Efficiency IsoGain™ for more reliable and cost-effective EDFAs, SM300/SM400-SC for UV-Green Transmission - and more HB-G Bow-Tie used in more Gyros than ever before!

Dr Chris Emslie
Chief Executive Officer
December 2011

If you would like to know more, visit us at our booth 4926 at the Photonics West 2012 Exhibition in San Francisco during 24-26th January 2012, to discuss your requirements with us, or visit our website at http://www.fibercore.com/

Thursday, 22 September 2011

Skinny Fibers – Fat Results: A Stunning Presentation from Fibercore Ltd on ‘Ultra-Low Profile, High Birefringence Gyroscope Fiber’

presented by Dr Andy Gillooly at the 'Inertial Sensors & Systems - Symposium Gyro Technology' in Karlsruhe, Germany, on 21st September 2011.



The future for optical fibers has, for some time, been for diameters smaller than the standard 125µm, fibers like our 80µm reduced-clad PM fibers that we ship over a million metres a month of to FOG manufacturers worldwide. The new HB800G(3.4/60) fiber from Fibercore Ltd is even skinnier with a mere 60µm diameter.


The benefits of these 'ultra-low profile' fibers are that they offer enhanced gyro sensitivity by allowing a longer path-length into a smaller volume, are stronger long-term as the reduced bending stress offers increased lifetime, and they are better for PZT phase-modulators as they offer more stretch for less applied force.


These smaller diameter fibers are more sensitive to microbending and require higher birefringence to overcome microbend induced cross-coupling. The very short 65mm beatlength of the new HB800G(3.4/60) is an indication of how high the birefringence is for this ultra-skinny fiber - the beatlength for our 80µm fibers being around 1.5mm, and less than 2mm for our 125µm fibers.


Andy's presentation discussed the mechanical lifetime of the fiber and the stiffness of the fiber compared to the cladding diameter, as well as the effects of the increasing birefringence on PER. He discussed the PER penalty that has to be paid when the fiber is used in a worse case 'basket weave' fiber wind and showed that the 60µm fiber performs as well as 80µm fiber in small diameter coils. Thermal cycling was also discussed with an illustration of how little the PER performance changes over temperature.



The conclusion: for the smallest diameter, highest birefringent fiber - HB800G(3.4/60) is the answer!

















Friday, 2 September 2011

The Fiber Optic Gyroscope

Fibercore Ltd will be presenting at the forthcoming 'Inertial Sensors & Systems - Symposium Gyro Technology' on the 20th September 2011 to discuss the use of reduced clad fibers in Fiber Optic Guroscopes. But what is a Gyroscope and why is a FOG different?



Put simply, a gyroscope is a device that measures rotation. So, by using a gyroscope, you can find out where something is pointing (eg an aircraft) or how level it is (eg a hovering helicopter, a high-speed train carriage, or even a pair of binoculars). This is why gyros are used to help navigate ships, aircraft and even some land vehicles and in systems used for automatically stabilizing things.



To be effective you need one gyro for each degree of freedom (or 'axis') in which the 'platform' can move. Aeroplanes, for example, can move in three dimensions - so need three gyros to cover roll, pitch and yaw.



Traditional gyroscopes have been around for more than 100 years and work on the 'spinning mass' principle. Those of you who had a gyro top as a child, or have played with one of those wrist-strengthening balls, will recall that when you spin the rotor, the gyro gets a mind of its own and wants to remain upright. Well it is the force that the gyro exerts trying to right itself (aka 'gyro' torque') that can be used to determine how far you have tried to rotate.



A FOG achieves the same result, but using polarized light and something called the Sagnac Effect. The Sagnac Effect states that if light travels in both directions around an enclosed optical system, simultaneously, and the optical system experiences a rotation, the light will undergo a Doppler-Shift (remember how police sirens change pitch as the car speeds past you? ... same thing) with the result that the two beams will recombine out-of-phase, creating interference. If you analyse this interference, you can find out the degree and the rate of rotation.



In essence, a simple FOG looks a bit like this:

The true benefit of FOG over a traditional, spinning-mass gyro is that it has no moving parts - no moving parts means nothing to wear out and nothing to service. As a result, FOGs are tougher, more reliable and demand far less maintenance. In fact one Fibercore customer found that the US Army could use one of their systems for an average 30 times longer before repair, simply by switching from conventional gyros to FOG! Another advantage of FOG is that it is ready to work immediately, whereas a spining-mass gyro can take up to 30 seconds to spin-up and stabilise. 30 seconds might not seem that much - but those of you old enough to remember the Cold War will also remember that we would only have had three minutes to wait from detection to destruction. Right up until the early 1980s - 30 seconds was a long time!


The optical fiber in a FOG enables a very long optical path length to be confined into a small volume and so magnify the small phase-shift caused by the Sagnac Effect - and the longer the path length, the more accurate the FOG.



The fiber used in FOGs needs to preserve polarization because, in order to generate stable interference, two light waves have to have the same orientation - if they crossed at right angles, they wouldn't even know the other one was there! Typically people want to get the longest optical path length into the smallest possible space and this leads to small diameter coils with multiple layers - demanding lots of birefringence (short beat-lengths) to make sure that the micro bending created within these layers does not counteract the stress inside the fiber (see our blogg on 'Bow-Tie Polarization Maintaining Fiber'), high numerical apertures to ensure that the fiber continues to guide strongly in these small coils and reduced coil diameter, to improve lifetime and save space. All of which go a long way to explaining our current development direction of ultra-low profile, ultra-high birefringence Bow-Tie PM Fiber.



If you would like to know more, look out for Dr Andy Gillooly at the Symposium or contact Fibercore Ltd at sales@fibercore.com.


Monday, 8 August 2011

Photosensitive Fibers & Fiber Bragg Gratings

As a result of a scientific accident whilst researching the nonlinear effect of intense laser light in optical fibers, a scientist call Kenneth Hill at the Communication Research Center accidently created an in-fiber reflection grating from localized photo-induced refractive index changes. This led to the development of photosensitive fibers and the birth of the fiber Bragg industry. Hill's discovery rapidly paved the way for the development of wavelength-selective reflectors based on Bragg's law, which became the fundamental principle behind the design of fiber Bragg gratings - the primary application of photosensitive fibers.


The demand for FBGs increased rapidly during the growth of the telecommunications industry, and new applications that arose during this time were a strong driver for research and development into FBGs. However the manufacturing capacity of these early devices limited the growth of the industry, and this led to the development of more powerful lasers, higher quality phase masks and optical fibers with greater photosensitivity so that fast FBG inscription speeds could be achieved.


As well as high photosensitivity, fibers used in these applications need to withstand the bend losses which occur when tight bends are formed with the fiber during their deployment, losses resulting from the mode field no longer guiding tightly within the center of the core. Fibercore's highly photosensitive range of specialty singlemode fibers meet both these requirements - increased Germania for enhanced photosensitivity and high NA for low bend-loss - the SM1500(4.2/xxx) fibers are especially suitable for these applications. Fibercore's PS range of intrinisically photosensitive fiber offers a high Germania content with a lower NA and does not require hydrogen loading to encourage absorption into the core.


To find out more, visit Nature Photonics (Nature Photonics/Vol 5/August 2011) and read Dr Andy Gillooly's article on 'Growing Gratings'. Andy is the Senior Sales Engineer at Fibercore Ltd and has a PhD in Fiber Bragg Gratings as well as an industrial background in FBGs and lasers.