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PhotonHub - training and innovation support in photonics

PhotonHub
PhotonHub

Photonics, the science of light, powers everything from cameras and traffic signals to medical and telecom systems.

Expertise and resources in photonics
Active
Fibre optics and photonics Electronics Generic metrology and measurement technology Sensors and sensor systems
8 years
19M + 15M Euro
Division: Division Digital Systems and Societal Transformation

The large European project PhotonHub makes it easier for European SMEs, startups, and scaling companies to integrate photonics into their products.

The PhotonHub project offers:

  • A one-stop-shop, combining technical and business support, laboratory access, and coaching—all in one place.
  • Tailored support tracks to match your company’s stage:
    • Launchpad – designed for spin-outs and startups
    • Scaling Club – for companies on the rise
    • Business Coaching – for established SMEs and larger players
  • Free expert assessment to evaluate your project's technical and commercial potential.
  • Access to Europe’s top photonics labs and researchers, via generous project vouchers.
  • Training in photonics via webinars and hands-on courses

Let’s work together!

RISE experts and resources in fiber optics and nanophotonics are our core offers in the PhotonHub network. Contact us to discuss how we can work together in proof of concepts, technology development, prototyping, to upscaling of photonic technologies. 

RISE experts and resources in photonics, including fiber optics, nanotechnology, and metrology, is at the core of our offers in the PhotonHub network. 

RISE free courses in photonics

Contact us to discuss how we can work together in Photonhub! Or visit www.photonhub.eu to learn more!

 

PhotonHub Europe (2021-2025) has received funding from the European Union's Horizon 2020 research and innovation program under grant agreement 101016665. The project runs within the 'Industrial Leadership' program. Together with the Swedish industry organization PhotonicSweden, RISE is the Swedish node of the project.

PhotonHub Phactory (2025-2028) has received funding from the European Union’s Horizon Europe programme under the Grant Agreement 101189537, in Public Private Partnership with Photonics21. 

Åsa Claesson

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9. Industry, innovation and infrastructure
See www.photonhub.eu for the entire list of partners
PhotonHub Europe, Innovation support funding
Projekt logo: PhotonHub Europe Attach document: Funders without URL: EU Horizon 2020 and Horizon Europe Project end date: Fiber optics and photonics Sekundär områdes navigation:
Metrology
Sensors and sensor systems
Digitalisation

Pressure sensors for machine integration and harsh environments (fiber

Pressure sensors for machinery - PRINTS

Fail-safe machinery is fundamental to industrial competitiveness, and monitoring of equipment condition is crucial.

In this project, we developed fiber optic pressure sensors for integration in heavy machinery.

Project management, R&D fiber optic sensors, Field trials
Active
Fibre optics and photonics Digitalisation Production and manufacturing Sensors and sensor systems
1.5 years
2 090 000 kr
Division: Division Digital Systems and Societal Transformation

Energy-efficient and fail-safe machinery are fundamental to industrial competitiveness and sustainability. Advanced monitoring of equipment condition is crucial.

Optical fibre sensors are an emerging technology for condition monitoring since these sensors often are very small, discrete, cause minimal impact on the material and the environment and can be seamlessly integrated in natural and man-made structures such as bearings, pumps, and boreholes. 

In particular, Fibre Bragg Gratings (FBG) is a mature and established technology in industry. These sensors are ubiquitously used as thermometers and strain gauges in machine monitoring nowadays, but are, intrinsically, poorly sensitive to external pressure, making them inefficient for pressure monitoring.

In this project (PRINTS), we developed multiplexable, highly sensitive fibre-optic pressure sensors based on Fibre Bragg Grating technology, the same underlying technology commonly used by fibre-optic strain and temperature sensors.

The fact that this new pressure sensor can be installed on the same optical fibre and probed by the same read-out equipment as its strain and temperature counterparts is an important feature since it allows monitoring of an addition parameter without addition of further costs. The primary target application is health monitoring of pumps and similar machinery. 

The project consortium was made up of

  • RISE, coordinator and expert in fiber optic sensor technologies,
  • SKF, a provider of bearings and machinery with integrated sensors,
  • Proximion, a manufacturer of Fibre Bragg Gratings and a provider of industrial sensor solutions, and
  • Svensk Kärnbränslehantering (SKB), an end-user with the need for stable long-term monitoring in boreholes.

The primary target application was health monitoring of pumps and similar machinery, where we aimed at designing and advancing the maturity of a pressure sensor prototype to a state where it has been validated for machine integration by SKF. 

The project also evaluated the applicability for borehole monitoring. SKB sees potential benefits because of the use of fibre sensors for monitoring purposes due to its inherent advantages: compact sensors, long-range deployment possibility, the possibility to have many sensors on the same fibre, and the long life time in harsh environments. Here, the time horizon is longer, and the project aims more at evaluating the applicability of these sensors in the demanding and harsh environment of boreholes rather than developing an advanced prototype for pressure monitoring. 

These two applications illustrate the wide potential applicability of the proposed sensor technology in PRINTS.

 

The PRINTS project was carried out within the Strategic Innovation Program "Smarter Electronic Systems", a joint venture by Vinnova, Formas and the Swedish Energy Agency.

Kenny Hey Tow

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9. Industry, innovation and infrastructure
Project end date: Sensors and sensor systems Sekundär områdes navigation:
Fiber optics and photonics
Metrology
Production and manufacturing

IntDemo - fiber optics for embedded sensing in composites

IntDemo - fiber optics in composites

Fiber optic sensors are well adapted for applications in the aerospace industry. The project has developed and demonstrated composite materials with embedded fiber optic sensors.

Fiber optics and composites
Completed
Fibre optics and photonics Digitalisation Lightweight solutions Sensors and sensor systems
3 years
46 000 000
Division: Division Digital Systems and Societal Transformation

In the IntDemo program, the Swedish aviation industry collaborated to demonstrate technology that will contribute to competitive, environmentally friendly and safe technology in new aeronautical products and systems.

This project has developed, among other things, fiber optic sensor technologies that can be embedded in composite materials. The development have been carried out by RISE together with composite experts at SAAB and KTH. The purpose has been to demonstrate embedded measurements of temperature and strain.

Fiber optics is an ideal platform for sensors that need to be embedded in other materials. An optical fiber is a few tenths of a mm thick and can be made thinner if needed. It is also possible to cascade sensors inside the fiber so that tens or hundreds (or even more) sensors are located along a single optical fiber.

 

The project is supported by Innovair, Sweden’s national strategic innovation program for aeronautics.

Carola Sterner

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9. Industry, innovation and infrastructure
Project end date: Fiber optics and photonics Sekundär områdes navigation:
Metrology
Composites

Real time analysis of temperature and materials in steel melts

RealSteel

The Swedish steel industry is a world leader in advanced special alloy steels. This project developed innovative sensors for monitoring steel production for higher quality and reduced consumption of raw material and energy.

Coordinator, RTD fiber optics and LIBS
Active
Fibre optics and photonics Digitalisation Production and manufacturing Sensors and sensor systems
3 years
SEK 8 millions (incl 4 millions in-kind)
Division: Division Digital Systems and Societal Transformation

The Swedish steel industry is a world leader in special steels for advanced applications and supplies customized specialty alloy steels with very high demands on composition and quality.

To meet customers' ever-increasing demands, steel companies work continuously with their processes and their process control. Particularly problematic is to obtain data ​​directly from a melt, during production.

Typical analysis methods are largely based on sampling and analysis in the lab, time consuming methods that do not provide real-time feedback to the process control.

In this project, we focus on continuous, automatic and robust measurement methods for analysis directly in a steel melt. Continuous measurement provides data for controlling the processes with increased precision and can contribute to higher product quality and reduced production costs. Better control will also contribute to lower consumption of energy and raw materials.

The project further develops methods for real-time measurements of temperature and chemical composition in steel melts.

The development of a lance system with integrated LIBS (materials analysis) and temperature sensor systems was initiated in an earlier project. This project will further developed the lance and sensor systems. 

Field tests are carried out in experimental furnaces and steelworks of the end users.

 

The project is carried out within the Strategic Innovation Program "Smarter Electronic Systems", a joint venture by Vinnova, Formas and the Swedish Energy Agency.

Carola Sterner

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9. Industry, innovation and infrastructure
Project end date: Fiber optics and photonics Sekundär områdes navigation:
Fiber optics and photonics
Metrology
Sensors and sensor systems
Composites
Chemical and biological analysis

Fiber optic sensor for monitoring high voltage components - HVComp

Transformer monitoring - HVComp
High voltage bushings Temperature sensing Fiber optic sensor

As the energy system evolves, the requirements for the components in the system increase.

This project develops measurement technology that contributes to more efficient use of the energy distribution system, driven by a transition to more renewable energy.

Project management, R&D fiber optics and composites
Active
Fibre optics and photonics Digitalisation Electronics Energy Sensors and sensor systems
3.5 years
Division: Division Digital Systems and Societal Transformation

Today's diversified energy production has an increasing element of renewable sources such as wind and solar. The uneven energy flow from, for example, wind power leads to a more varied load on the energy system. 

With the changes in energy production, greater demands are placed on components that are part of the system that controls and distributes the energy. 

So-called 'high voltage bushings' are costly and important parts of a transformer, key components in the energy system. The bushing provides insulation between the high and low voltage sides of the transformer, and controls the load (current) through the system. 

Being able to optimize the load gives important cost savings for the systems operator, and can enable an overall more stable and optimized energy system.  

In this project, technology is being developed to integrate fiber optic temperature sensors in high-voltage bushings. The project brings together expertise in fiber optics, composite materials, high-voltage components and systems and energy suppliers.

Fiber optic sensors have several unique advantages that make them suitable candidates for this demanding application.

  • The fiber-optic sensor probe does not contain electrically conductive material, which would directly disqualify it for integration into high-voltage components.
  • The optical fiber is thin and compatible with the materials used in the manufacture of a high-voltage bushing.
  • The optical fiber can enable temperature measurements over a long distance along a fiber, ie one can monitor the temperature in many places in a bushing without integrating more than one probe.

The project has developed an optical fiber sensor that can be integrated into the bushing and provide continuous information about the temperature in the composite material. Sensor-equipped bushings have been installed in a transformer station and the operating temperature load is being monitored over several months time.

 

The project is performed within the Strategic Innovation Program "Smarter Electronic Systems", a joint venture by Vinnova, Formas and the Swedish Energy Agency.

Björn Norberg

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7. Affordable and clean energy
9. Industry, innovation and infrastructure
11. Sustainable cities and communities
Project end date: Energy transmission Sekundär områdes navigation:
Fiber optics and photonics
Metrology
Sensors and sensor systems
Production and manufacturing
Composites

Automated scrap metal sorting using laser spectroscopy - AUSOM

Automated srap metal sorting - AUSOM

Efficient material sorting for recycling is a prerequisite for sustainable material use. In this project, systems for cost-effective sorting of scrap metal were developed, in collaboration between seven European companies, institutes and universities.

Optics and LIBS development
Completed
Fibre optics and photonics Digitalisation Production and manufacturing Sensors and sensor systems
3 years
Division: Division Digital Systems and Societal Transformation

Metals and minerals can in theory be recycled almost indefinitely. By reusing materials, you can save up to 80% energy compared to extracting and remanufacturing the metal. It also minimizes the use of new raw materials and the need for ore mining. In practice, however, there are many challenges with metal recycling, one such challenge is efficient sorting of the metal to be recycled.

Efficient scrap metal sorting with the help of lasers

This project developed a robust and cost-effective sorting technology for scrap metal. A laser-based sensor system measures what material the scrap piece contains and the system sorts the metal into the correct compartment.

The laser system is called LIBS, a well-established method for analyzing the chemical content of materials. In LIBS (laser induced breakdown spectroscopy), a high-energy laser pulse is fired at the material to be analyzed. This creates a local plasma where the content of the material can be identified spectroscopically.

Unlike other analysis techniques, such as XRF, LIBS can also identify the lighter alloying elements in steel, such as Si, Al and Mg. A LIBS-based system can therefore be used to sort scrap with better precision than if you use other measurement techniques.

A European consortium

The AUSOM project developed a LIBS-based analysis system that enables cost-effective and improved sorting of scrap metal in recycling facilities. The sorting system can contribute to:

  • Environment and circularity: Less use of virgin material and the production of secondary raw materials of higher value.
  • Social aspects: Better working conditions through reduced need for manual sorting.
  • Economic and strategic benefits: Better access to high-quality secondary raw materials for European industry, less dependence on critical raw materials and associated import dependence.

 

This activity has received funding from EIT RawMaterials, initiated and funded by the European Institute of Innovation and Technology (EIT), a body of the European Union, under the Horizon 2020, the EU Framework Programme for Research and Innovation.

Carola Sterner

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9. Industry, innovation and infrastructure
12. Responsible consumption and production
Projekt logo: LIBS för sortering av metall Project end date: Circular transition Sekundär områdes navigation:
Fiber optics and photonics
Metrology
Materials and durability

Real time sensing of temperature and chemistry in molten metal

Real time sensing in metallurgy CONSENSO

Robust sensing systems for metallurgy must cope with high temperatures, dust and corrosive atmospheres. In this project, the next step was taken towards the commercialization of new technologis to monitor temperature and material composition in molten metal.

Project participant, RTO
Completed
Fibre optics and photonics Digitalisation Generic metrology and measurement technology Production and manufacturing Sensors and sensor systems
2021-03-31
Division: Division Digital Systems and Societal Transformation
Continuous measurement of temperature and composition in molten metal provides opportunities for better use of energy and raw materials.

Good process control is crucial for quality, efficiency and safety in the production and processing of metal. However, developing measurement systems for this environment is a challenge. High temperatures and a corrosive and dirty atmosphere put high demands on the sensor systems to be used.

A typical metallurgical process today monitors the temperature using thermocouples, in this case a disposable sensor. The chemical composition is typically studied using sampling and chemical analysis in a laboratory. Both of these measurement methods provide a snapshot of temperature and material composition at the time and place where the sample was taken. No information is given about variations in temperature and composition over time and over the melt.

The ability to continuously, and in real time, monitor these parameters is of great interest in the metallurgical industry. Continuous real-time measurements of temperature and chemical composition in molten metal could contribute to higher efficiency (eg lower energy consumption, lower raw material consumption), better steel quality, higher safety and could possibly also enable a higher use of recycled materials in the processes.

RISE and partners have previously developed systems for continuous monitoring of temperature and chemistry, specially adapted for metallurgical processes.

Continuous temperature measurement: BST (Broad Band Spectral Thermometry) is a method where process radiation from the melt is collected and its optical spectrum analyzed to determine the process temperature. The principle is the same as for pyrometers, but with the important difference that BST analyzes a wide optical spectrum, which makes the technology considerably more robust, and enables measurements in environments and processes where pyrometers cannot be used. BST can also provide other important information from the process, such as the presence of alkalis. By using fiber optics, the process radiation can be collected directly from the process. Read more about BST. 

Continuous analysis of chemical composition: LIBS is a well-established method for analyzing chemical content in materials. A high-energy laser pulse is fired at the material to be analyzed. The laser light creates a local plasma where the content of the material is revealed by specific lines in the plasma spectrum. Read more about LIBS.

In this project, the next step was taken towards the commercialization of these measurement systems. Internationally leading metallurgical industry, Zanardi (Italy) and Sandvik Materials (Sweden, now Alleima), test the systems in their metallurgical processes and Agellis (now part of RHI Magnesita), a Swedish measurement technology company with leading solutions for the metallurgical industry, validates the commercial potential.

 

This project received funding from EIT RawMaterials, initiated and funded by the European Institute of Innovation and Technology (EIT), a body of the European Union, under the Horizon 2020, the EU Framework Programme for Research and Innovation.

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9. Industry, innovation and infrastructure
Project end date: Metrology Sekundär områdes navigation:
Fiber optics and photonics
Sensors and sensor systems
Production and manufacturing
Chemical and biological analysis

Fiber optic sensors

Fiber optic sensors
Fiber optic sensors

Fiber optic sensors are insensitive to electromagnetic fields, can be interrogated at a distance, and can withstand harsh environments.

To monitor the condition of wind turbines, important bodily functions during surgery, and to measure temperature along kilometer-long pipelines. These are three applications where fiber optic sensors make a difference.

A fiber optic sensor can be used where conventional measurement technology does not work. The fiber is insensitive to electromagnetic fields, can be integrated inside other materials and components, can measure extremely accurately and can be read from large distances. They find applications in e.g. explosive environments, systems where you need to measure at many points (distributed sensing), or where it is important that the sensor has a small volume or mass.

Fiber sensors at RISE

At RISE, we develop fiber-optic sensors for applications in, e.g. healthcare, infrastructure, energy and process industry. Common to the systems is that an optical fiber is in the core of each system. Sometimes we adapt well-established fiber optic technologies to your particular application. Sometimes completely new methods and innovations are required.

We work with well-established fiber optic technologies such as fiber Bragg gratings (FBGs), spectroscopy and various types of distributed fiber optic sensors (DTS, DAS), but we also develop special sensors for new applications. We can also design and manufacture specialty optical fibers that are tailored to the application.

Let's discuss!

Contact us to discuss how fiber optic sensors can solve challenges and create new revenue to your business.

Björn Norberg

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Åsa Claesson

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Division (OLD): Division Digital Systems and Societal Transformation Division: Division Digital Systems and Societal Transformation Fiber optics and photonics

Fiber optics - Specialty optical fiber

Specialty optical fiber
RISE Fiberlab - Custom optical fibers

At RISE Fiberlab, we develop and manufacture custom-designed optical fibers for advanced applications where standard telecom fibers don’t suffice. With more than 25 years of experience, we support everything from early-stage research to small-scale production and qualification.

An optical fiber that is adapted to meet non-standard requirements is often called 'specialty optical fiber'. At RISE, we have the expertise and resources to design and develop optical fibers, custom for your application.

We support your needs from early research, through first prototypes, or thousands of kilometers of customized fiber.

Read more about our Fiberlab facility and offer. 

 

What fibers do we offer?

The list of possible specialty fibers is long, we're only giving a few examples here. Contact us to discuss your application!

Optical fiber coatings protects the fiber and can enable active functions

Specialty optical fiber coatings

An optical fiber is typically made from glass, and the fiber must be coated with a protective layer to not be damaged by e.g. moisture and abrasion.

In many cases, a standard coating is not enough. A special acrylate coating is applied to extend the use to temperatures up to 150°C. Polyimide coated fibers (golden color in the image) are used in application temperatures up to 350°C. Excessive moisture or gaseous environments can create other issues, sometimes mitigated by a thin layer of hermetic carbon. 

Other harsh environments may require radiation resistant glass. Medical applications might require biocompatibility of coatings and buffers. Or, as a challenge that was presented to us a few years ago: a fiber that is visible under X-ray. We developed and such a fiber, of course. 

Another very interesting possibility with the fiber optic coating is to develop materials that respond in different ways on stimulii, for example humidity or chemicals. Such coatings can be used for fiber optic sensors. 

Read more about what specialty coated optical fibers can enable: 

 

An ultra thin optical fiber on a standard polyimide coated fiber

Ultra thin optical fiber

A typical optical fiber has a glass diameter of 125µm. That is already quite thin. But in some applications, 125um is too much. Such applications call for 'reduced clad fibers'.

RISE has developed ultra thin optical fibers, with glass diameters down to 25µm. These miniaturized fibers were originally developed for integration in fuel cells, but they are today also used in various sensing applications where size matters. 

Read more in our recent publications

  • "Sensing applications of fiber Bragg gratings in single mode fibers with as-drawn 25 μm diameter cladding", Optics and Laser Technology, 2021 (link)
  • "FBG Applications in 25um Diameter Fibers", Optica Advanced Photonics Congress, 2022 (link)
Capillaries and microstructured fibers

Capillaries and microstructured fibers

A capillary is not an optical fiber since it cannot guide light. But quartz capillaries are manufactured in similar drawing towers as optical fibers, and Fiberlab has manufactured many capillary designs over the years.  

Microstructured fibers are the combination of holes and optical cores in the one fiber cross section. These fibers are used for e.g. optofluidics or electro optic fiber components.  

Read more in our recent publications

  • "Flexible Liquid-Filled Scintillating Fibers for X-Ray Detection", IEEE Sensors, 2023 (link)
  • "All-fiber Optical Pulse Storage Using Poled Fiber Modulators", CLEO 2024 (link)
RISE Fiberlab in Hudiksvall
Image: Phillippe Rendu

RISE Fiberlab, custom built for specialty fiber development

Fiberlab is an independent resource for the developent, prototyping, and manufacture of specialty optical fiber. Our facility holds three 17m tall fiber draw towers, and all the expertise and resources needed for being a world class partner for your challenges in custom optical fibers.   

In the lab, we develop and produce optical fiber of various types and dimensions and with the possibility to coat fiber with active or passive coatings. Where relevant, we also provide extrusion of buffers on the fiber.

  • For more details on the instrumentation and offer at Fiberlab, contact us or consult our offer page. 

What types of optical specialty fibers are there? 

There are hundreds of specialty optical fiber types on the market, and the number of possible variants is limitless. We've listed a few examples on this page, but we have many more fibers in our portfolio. 

Do you want to discuss how specialty optical fiber can be used in your application, or perhaps you already have a specification on what fiber you need?

Contact Us!

Åsa Claesson

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Division (OLD): Division Digital Systems and Societal Transformation Division: Division Digital Systems and Societal Transformation Fiber optics and photonics

Fiber optics

Fiber optics
Fiber Optics at RISE

Want to measure temperature at hundreds of positions in a harsh environment? Do you need to bring intelligence into systems where you can't use electricity? Do you want to develop new solutions for minimally invasive surgery?

Then fiber optics can be the solution for you.

The versatile optical fiber enables applications that are difficult or impossible to achieve with other technologies.

Fiber optics is finding more and more applications even outside telecoms. These can be distributed temperature and pressure sensors, sensors for gas or water quality, sensing solutions for safety and efficiency in industrial or energy sectors, or solutions to provide new minimally invasive medicine technologies.

RISE has been active in fiber optics since the early 1990s. Our expertise covers the entire chain of fiber optic technologies from specialty fiber manufacturing, design and manufacture of components and fiber optic sensors, to complete system solutions where fiber optics are an integral part.

Fiber optic sensors are often used in process industry

Fiber optic sensors and fiber optic solutions

A fiber optic sensor can often be used where conventional technologies fail, e.g. in explosive settings, in systems where you need numerous measurement points, or in applications where the sensor needs to be very small or of extremely low weight.  

The optical fiber can be tailor made for each application.

Specialty optical fiber

Often a standard telecom fiber is not enough for fiber optic applications. Perhaps the fiber needs to take high temperatures, aggressive chemistry, or be miniaturized to fit in the intended application. 

Courses and training in fiber optics

Curious to learn more? Welcome to our introductory hands-on training in fiber optic sensing, or our 2 hour free webinar.

Let's discuss!

As a Swedish research institute, we collaborate with industrial partners, universities and researchers all over the world.

Contact us to discuss fiber optics!

.

(fibre optics, optical fibre, optical fibre sensor)

Åsa Claesson

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Björn Norberg

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Division (OLD): Division Digital Systems and Societal Transformation Division: Division Digital Systems and Societal Transformation Fiber optics and photonics