Wednesday, August 8, 2012

Lithium Niobate Crystal splits Beam of Photons into Two Different Colors

Tests performed at the National Institute of Standards and Technology (NIST) show that a new method for splitting photon beams could overcome a fundamental physical hurdle in transmitting electronic data. These results* could lead to commercial systems that can help safeguard the transfer of sensitive information.
fiberoptic
Nearly transparent, this lithium niobate crystal (visible just above the white square section at bottom right of righthand photo) is capable of splitting a beam of photons into two beams of two different colors, an innovation that may help send quantum information through fiber optic cables, one of which is attached to the crystal at its top left corner and extends straight upward to the top of the photo frame.
Credit: Talbott/NIST
View hi-resolution image
The findings confirm that a prototype device developed with collaborators at Stanford University can double the amount of quantum information that can be sent readily through fiber-optic cables, and in theory could lead to an even greater increase in the rate of this type of transmission.
Conventional fiber-optic systems, in use for decades, transmit data as a series of light pulses—just a step up from Morse code. Such pulse streams can be intercepted by third parties undetectably. But the photons themselves can carry data, encoded in their quantum states. Because any attempt to intercept that data alters the quantum state, eavesdroppers can always be detected.
While information scientists have found a way to encode photon quantum states successfully, practical systems need the photons to be at wavelengths compatible with both existing optical-fiber networks and single-photon sensitive (and economically viable) silicon detectors. Unfortunately, these wavelengths are different.
One potential solution is to change the photons' wavelength from the infrared—desirable for fiber networks—to the visible spectrum so a silicon detector can "see" them. A method of doing so is to mix the information-carrying photons with a second photon beam. The information-carrying photons absorb this second beam's additional energy and get kicked up from the infrared region of the spectrum to the wavelength of visible red light, which silicon sensors can detect. However, silicon single-photon detectors cannot operate very fast, which puts limitations on data rates and ultimately, their usefulness for quantum information transmission systems.
"The limiting factor up until this point has been the detector speed," says Paulina Kuo, a scientist with NIST's Applied and Computational Mathematics Division. "Researchers would like a way around this issue, as it stands in the way of quantum information-based security innovations."
The heart of the newly developed device is a new crystal that goes beyond converting the wavelength of the photons. Designed and fabricated by Stanford's Jason Pelc, the crystal is capable of splitting the beam of infrared, information-carrying photons into two distinct beams of slightly different color, and directing the different-colored photons to different outputs. Controlling the flow to either output allows the team to use two "slow" detectors in place of one, thereby doubling the overall system speed.
NIST tests showed that this innovation allows twice as much data to be sent in a single beam, and Kuo says that the photons conceivably can be split not just into two, but several different beams.
"We first demonstrated this concept last year,** but with this new device, the technique can be scaled up, meaning that in theory, we can significantly increase the amount of information that can be sent," she says. "We hope this is a potential solution to the detector problem."
* J.S. Pelc, P.S. Kuo, O. Slattery, L. Ma, X. Tang and M.M. Fejer. Dual-channel, single photon upconversion detector at 1.3 micrometers. Optics Express. V. 20 No. 17. Published Aug. 3, 2012.
** L. Ma, J.C. Bienfang, O. Slattery and X. Tang. Up-conversion single-photon detector using multi-wavelength sampling techniques. Optics Express Vol. 19, No. 6. Published Mar. 14, 2011.
Source Link:  http://www.nist.gov/itl/math/photon-080812.cfm
 
 
 

Thursday, August 2, 2012

ElectroniCast Fiber Optic Sensors: Global Market Forecast & Analysis

Fiber optic sensor technology has experienced impressive growth since ElectroniCast first started providing market and technology analysis of the subject since the early 1980s.  In fact their analysts were tracking the various advanced photonic technologies, since 1976.

This is the ElectroniCast forecast of global market consumption of Fiber Optic Sensors.  The 2011-2016 quantitative market forecast data presented in this study report are segmented into the following geographic regions, plus a Global summary:

·        The Americas (North America, Central and South America)
·        EMEA (Europe, Middle Eastern countries, plus Africa)
·        APAC (Asia Pacific)

The market forecast data is presented and segmented in two main sections:
           
·        Fiber Optic Point Sensors: Component-Level
·        Distributed Continuous Fiber Optic Sensor Systems

Fiber Optic Point Sensors  The ElectroniCast market forecast of the Fiber Optic Point Sensors is segmented by the following end-user applications:

·        Manufacturing Process/Factory
·        Civil Engineering/Construction (buildings, bridges, tunnels, etc)
·        Military/Aerospace/Security
·        Test & Measurement used in Telecommunication, CATV, Private/Enterprise
·        Biomedical/Science
·        Petrochemical/Energy/Utilities/Natural Resources
·        Automotive/Vehicle
Sensing/Measuring (Measurand)    The ElectroniCast Fiber Optic Point Sensor Forecast further segmented by the following sensing/measuring quantity (measurand) types:

·        Mechanical Strain
·        Temperature
·        Pressure
·        Chemical, Gas, Liquid
·        Vibration, Acoustic, Seismic
·        Displacement, Acceleration, Proximity
·        Electric and Magnetic Field - Fiber Optic Sensors
·        Rotation (such as Fiber Optic Gyroscopes: FOGs)


Distributed Continuous Sensors     The market forecast of the Distributed Continuous Sensors is further segmented by application and by technology, as follows:

·        Manufacturing Process/Factory
o       Interferometric
o       Raman back-scattering 
o       Brillouin waves
·        Civil Engineering/Construction (buildings, bridges, tunnels, etc)
o       Interferometric
o       Raman back-scattering 
o       Brillouin waves
·        Military/Aerospace/Security
o       Interferometric
o       Raman back-scattering 
o       Brillouin waves
·        Petrochemical/Energy/Utilities/Natural Resources
o       Interferometric
o       Raman back-scattering 
o       Brillouin waves
·        Biomedical/Science
o       Interferometric
o       Raman back-scattering 
o       Brillouin waves


ElectroniCast counts each Point fiber optic sensors as one unit; however, the volume/quantity (number of units) of Distributed Continuous fiber optic sensors is based on a complete optical fiber line/link, which we classify as a “system”.



A Distributed Continuous fiber optic sensor system involves the optic fiber with the sensors embedded within the fiber, plus electronics, connectors, data acquisition module, software, and miscellaneous components; however, ElectroniCast quantifies the optical fiber, cable (fiber jacket) and the sensor elements in this forecast data (only).

It is important to note that POINT sensors are often used in Distributed fiber optic sensor systems (installed at multiple-points/ point-to-point); however, we count their use in the Point fiber optic sensor category and not in the continuous (non-stop) distributed sensor category.
           
Fiber Optic Sensors: Global Market Forecast            Depending on the application, fiber may be used because of its small size, or because no electrical power is needed at the remote location, or because many sensors can be multiplexed along the length of a fiber by using different wavelengths of light for each sensor, or by sensing the time delay as light passes along the fiber through each sensor.

The consumption value of fiber optic sensors is shown in Figure 1.  During the 2011-2016 timeline, we forecast that the consumption (use) value will grow at an impressive average annual rate of 20.5% from $1.34 billion to $3.39 billion.  Market forecast data in this study report refers to consumption (use) for a particular calendar year; therefore, this data is not cumulative data.
           

The 2011-2016 quantitative market forecast data presented in this study report are segmented into the following geographic regions, plus a Global summary:

·        The Americas (North America, Central and South America)
·        EMEA (Europe, Middle Eastern countries, plus Africa)
·        APAC (Asia Pacific)

Extensive Technology Review  This report by ElectroniCast Consultants provides a very deatiled review of applicable technologies, including:

·        Interferometry
·        Intensity
·        Polarization
·        Fiber Bragg Grating (FBG)
·        Raman back-scattering
·        Fluoresence
·        Brillouin waves
·        Doppler Anemometry
·        Spectroscopy
·        Waveguides/ Specialty Optical Fiber
·        Optrode

Competition             Also included in this market forecast and analysis report from ElectroniCast is an extensive list of fiber optic sensor manufacturers and related companies, along with a matrix table classifying the types of sensors technologies.  Market share estimates for the leading competitors are also provided. 

Intrinsic and Extrinsic Sensing              Monitoring and data transmission using fiber optic sensors and optical fiber in cabling is now commonplace in various applications, via intrinsic fiber optic sensors or extrinsic fiber optic sensors.  With an intrinsic sensor, one or more of the sensing/measuring quantity or physical properties (measurand) of the optical fiber passes through or inside the optical fiber and therefore experiences a change.  Extrinsic sensing takes place in a region outside of the optical fiber and the optical fiber acts as a transmission media of light to and from (linking) the sensing interface.

The worldwide consumption value for fiber optic intrinsic sensors is forecast to increase at an average annual growth rate of nearly 20.7% during the 2011-2016 timeframe covered in this market forecast study by ElectroniCast; the use of fiber optic interface extrinsic sensors is forecast to increase at 18.15% per year.

 About ElectroniCast

ElectroniCast, founded in 1981, specializes in forecasting technology and global market trends in fiber optics communication components and devices, as well providing market data on light emitting diodes used in lighting.

As an independent consultancy we offer multi-client and custom market research studies to the world's leading companies based on comprehensive, in- depth analysis of quantitative and qualitative factors. This includes technology forecasting, markets and applications forecasting, strategic planning, competitive analysis, customer-satisfaction surveys and marketing/sales consultation. ElectroniCast, founded as a technology-based independent consulting firm, meets the information needs of the investment community, industry planners and related suppliers.


Project Director - ElectroniCast


Stephen Montgomery, MBA/Technology Management, President at
ElectroniCast Consultants.

Mr. Montgomery joined ElectroniCast over 20-years ago (in 1990) and has specialized in photonics and fiber optic components market/technology forecasting and client consultations.  In addition to serving as President, he has been the Director of the Fiber Optics Components group since 1994. He has given numerous presentations and published a number of articles on optical communication markets, technology, applications and installations.

Since 1994 (18-years), Mr. Montgomery has been a member of the Editorial Advisory Board of LIGHTWAVE Magazine (Pennwell Publishing).  Since 2003 (almost 10-years) he has been a regular contributor, writing a monthly article covering optical communication networks for OPTCOM Magazine (Japan)



Contact me for more information: Stephen Montgomery








Importance of residual stresses in the Brillouin gain spectrum of single mode optical fibers

Researchers from EDF R&D, Draka Communications, Institut Telecom/Telecom ParisTech, and the Université Paris Est, reported that residual stresses inside optical fibers could impact significantly on Brillouin spectrum properties. The researchers analyzed the importance of internal stresses on the Brillouin Gain Spectrum (BGS) for a conventional G.652 fiber and compared modeling results to measurements. Then the residual internal stresses have been investigated for a set of trench-assisted fibers: fibers are coming from a single preform with different draw tensions. Numerical modeling based on measured internal stresses profiles are compared with corresponding BGS experimental results. Clearly, Brillouin spectrum is shifted linearly versus draw tension with a coefficient of −20MHz/100g and its line-width increases.

Source: Optics Express, Vol. 20, Issue 2, pp. 1790-1797 (2012)

Impact of ASE on Brillouin scattering of a single-frequency signal


Researchers from Laser Zentrum Hannover e.V., ant the Centre for Quantum-Engineering and Space-Time Research – QUEST, experimentally investigated the influence of amplified spontaneous emission within the Brillouin gain bandwidth on the Brillouin scattering of a single-frequency signal. The experiments were performed for the case of artificial amplified spontaneous emission (ASE) injected in backward direction into a passive fiber, as well as in forward direction of a low-power fiber amplifier.

A significant influence could be observed, when the ASE was counter-propagating to the signal. Injecting 160.6 nW of ASE within the Brillouin gain bandwidth led to a decrease of about 3 dB of the SBS-threshold of an approximately 335 m long passive fiber from about 80 mW to less than 40 mW. At a fixed signal power of 81 mW the backscattered power and the power in the Brillouin scattered Stokes maximum increased by a factor of 19.

Source: Optics Express, Vol. 20, Issue 10, pp. 10572-10582 (2012) http://dx.doi.org/10.1364/OE.20.010572