Laser-based airborne asbestos detector developed at University of Hertfordshire

May 2, 2013
Washington, DC--A paper published today in OSA's Optics Express describes the first portable, real-time airborne asbestos detector developed at the University of Hertfordshire.

Washington, DC--A paper published today in the Optical Society's (OSA) (http://www.osa.org) open-access journal Optics Express at http://www.opticsinfobase.org/oe/abstract.cfm?uri=oe-21-9-11356 describes the first portable, real-time airborne asbestos detector developed by a team of researchers from the University of Hertfordshire (http://www.laserfocusworld.com/articles/print/volume-44/issue-9/world-news/atmospheric-studies-ice-crystal-shapes-are-assessed-in-the-earthrsquos-atmosphere.html) (Hertfordshire, England). Asbestos was once called a miracle material because of its toughness and fire-resistant properties and was used as insulation, incorporated into cement, and even woven into firemen's protective clothing. Over time, however, scientists pinned the cause of lung cancers such as mesothelioma on asbestos fiber inhalation. Although banned in many industrialized countries in the 1980s, the threat of asbestos lingers in the ceilings, walls, and floors of old buildings and homes. The researchers hope the prototype asbestos detector--to be commercialized in the UK in the next few years--will provide roofers, plumbers, electricians, and other workers in commercial and residential buildings an affordable way to quickly identify if they have inadvertently disturbed asbestos fibers into the air.

"Many thousands of people around the world have died from asbestos fiber inhalation," says Paul Kaye, a member of the team that developed the new detection method at the University of Hertfordshire’s School of Physics, Astronomy and Mathematics. "Even today, long after asbestos use was banned in most Western countries, there are many people who become exposed to asbestos that was used in buildings decades earlier, and these people too are dying from that exposure."

Currently, the most common way to identify hazardous airborne asbestos at worksites is to filter the air, count the number of fibers that are caught, and later analyze the fibers with X-ray technology to determine if they are asbestos. The approach requires expensive lab work and hours of wait time. An alternative method to evaluate work site safety is to use a real-time fiber detector, but the current, commercially available detectors are unable to distinguish between asbestos and other less dangerous fibers such as mineral wool, gypsum, and glass. The University of Hertfordshire team’s new detection method, in contrast, can identify asbestos on-site. It does so by using a laser-based technique that takes advantage of a unique magnetic property of the mineral.

When exposed to a magnetic field, asbestos fibers orient themselves to align with the field. The property is virtually unique among fibrous materials. "Asbestos has a complex crystalline structure containing several metals including silicon, magnesium, and iron. It is thought that it is the iron atoms that give rise to the magnetic properties, but the exact mechanism is still somewhat unclear," says Kaye. Kaye notes that his team wasn't the first to try to exploit the magnetic effect to develop an asbestos detector. "Pioneering U.S.-based scientist Pedro Lilienfeld filed a patent on a related approach in 1988, but it seems it was not taken forward, possibly because of technical difficulties," he says.

The Hertfordshire team's new detection method, developed under the European Commission FP7 project 'ALERT' (FP7-SME-2008-2), works by first shining a laser beam at a stream of airborne particles. When light bounces off the particles, it scatters to form unique, complex patterns. The pattern "is a bit like a thumbprint for the particle," says Kaye, sometimes making it possible to identify a particle's shape, size, structure, and orientation by looking at the scattered light. "We can use this technique of light scattering to detect single airborne fibers that are far too small to be seen with the naked eye," he says. After identifying the fibers, the detector carries them in an airflow through a magnetic field, and uses light scattering again on the other side to tell if the fibers have aligned with the field. "If they have, they are highly likely to be asbestos," Kaye says.

The team has tested their detector in the lab and has worked with colleagues in the U.K. and Spain to develop prototypes that are now undergoing field trials at various locations where asbestos removal operations are underway. "Our colleagues estimate that it will take 12 to 18 months to get the first production units for sale, with a target price of perhaps 700-800 U.S. dollars," Kaye says. As production increases after the initial product launch, Kaye hopes that costs may be cut even further, making the detectors even more affordable for an individual plumber, electrician or building renovator. "These tradespeople are the most frequently affected by asbestos-related diseases and most who get the diseases will die from them," Kaye says. The team hopes that, over time, the new detector will help to reduce the 100,000 annual death toll that the World Health Organization attributes to occupational exposure to airborne asbestos.

SOURCE: OSA; http://www.osa.org/en-us/about_osa/newsroom/newsreleases/2013/on-site_asbestos_detector_offers_promise_of_better/

IMAGE: The prototype asbestos detector unit is shown with the lid removed. The prototypes are now undergoing field trials at various locations where asbestos removal operations are underway. (Image credit: Paul Kaye, University of Hertfordshire)

Sponsored Recommendations

Working with Optical Density

Feb. 26, 2025
Optical Density, or OD, is a convenient tool used to describe the transmission of light through a highly blocking optical filter.

Custom-Engineered Optical Solutions for Your Application

Feb. 26, 2025
Explore the newest and most widely used applications of Semrock optical filters.

Linear Stages & Rotary Stages for High Precision Automation & Motion Control

Feb. 13, 2025
Motorized Linear Translation Stages & Rotary Precision Positioning Stages for High Performance Automation & Motion Control | PI USA

Motion Controllers for Precision Positioning and Automation

Feb. 13, 2025
PI manufactures a range of precision motion controllers and drivers for positioning systems, including stepper motors, brushless motors, and servo motors.

Voice your opinion!

To join the conversation, and become an exclusive member of Laser Focus World, create an account today!