Compression therapy is a standard form of treatment for patients who suffer from venous ulcers and other conditions in which veins struggle to return blood from the lower extremities. Compression stockings and bandages, wrapped tightly around the affected limb, can help to stimulate blood flow. But there is currently no clear way to gauge whether a bandage is applying an optimal pressure for a given condition.
Now engineers at MIT have developed pressure-sensing photonic fibers that they have woven into a typical compression bandage. As the bandage is stretched, the fibers change color. Using a color chart, a caregiver can stretch a bandage until it matches the color for a desired pressure, before, say, wrapping it around a patient’s leg.
The photonic fibers can then serve as a continuous pressure sensor — if their color changes, caregivers or patients can use the color chart to determine whether and to what degree the bandage needs loosening or tightening.
“Getting the pressure right is critical in treating many medical conditions including venous ulcers, which affect several hundred thousand patients in the U.S. each year,” says Mathias Kolle, assistant professor of mechanical engineering at MIT. “These fibers can provide information about the pressure that the bandage exerts. We can design them so that for a specific desired pressure, the fibers reflect an easily distinguished color.”
Kolle and his colleagues have published their results in the journal Advanced Healthcare Materials. Co-authors from MIT include first author Joseph Sandt, Marie Moudio, and Christian Argenti, along with J. Kenji Clark of the Univeristy of Tokyo, James Hardin of the United States Air Force Research Laboratory, Matthew Carty of Brigham and Women’s Hospital-Harvard Medical School, and Jennifer Lewis of Harvard University.
Natural inspiration
The color of the photonic fibers arises not from any intrinsic pigmentation, but from their carefully designed structural configuration. Each fiber is about 10 times the diameter of a human hair. The researchers fabricated the fiber from ultrathin layers of transparent rubber materials, which they rolled up to create a jelly-roll-type structure. Each layer within the roll is only a few hundred nanometers thick.
In this rolled-up configuration, light reflects off each interface between individual layers. With enough layers of consistent thickness, these reflections interact to strengthen some colors in the visible spectrum, for instance red, while diminishing the brightness of other colors. This makes the fiber appear a certain color, depending on the thickness of the layers within the fiber.
“Structural color is really neat, because you can get brighter, stronger colors than with inks or dyes just by using particular arrangements of transparent materials,” Sandt says. “These colors persist as long as the structure is maintained.”
The fibers’ design relies upon an optical phenomenon known as “interference,” in which light, reflected from a periodic stack of thin, transparent layers, can produce vibrant colors that depend on the stack’s geometric parameters and material composition. Optical interference is what produces colorful swirls in oily puddles and soap bubbles. It’s also what gives peacocks and butterflies their dazzling, shifting shades, as their feathers and wings are made from similarly periodic structures.
“My interest has always been in taking interesting structural elements that lie at the origin of nature’s most dazzling light manipulation strategies, to try recreating and employing them in useful applications,” Kolle says.
A multilayered approach
The team’s approach combines known optical design concepts with soft materials, to create dynamic photonic materials.
While a postdoc at Harvard in the group of Professor Joanna Aizenberg, Kolle was inspired by the work of Pete Vukusic, professor of biophotonics at the University of Exeter in the U.K., on Margaritaria nobilis, a tropical plant that produces extremely shiny blue berries. The fruits’ skin is made up of cells with a periodic cellulose structure, through which light can reflect to give the fruit its signature metallic blue color.
Together, Kolle and Vukusic sought ways to translate the fruit’s photonic architecture into a useful synthetic material. Ultimately, they fashioned multilayered fibers from stretchable materials, and assumed that stretching the fibers would change the individual layers’ thicknesses, enabling them to tune the fibers’ color. The results of these first efforts were published in Advanced Materials in 2013.
When Kolle joined the MIT faculty in the same year, he and his group, including Sandt, improved on the photonic fiber’s design and fabrication. In their current form, the fibers are made from layers of commonly used and widely available transparent rubbers, wrapped around highly stretchable fiber cores. Sandt fabricated each layer using spin-coating, a technique in which a rubber, dissolved into solution, is poured onto a spinning wheel. Excess material is flung off the wheel, leaving a thin, uniform coating, the thickness of which can be determined by the wheel’s speed.
For fiber fabrication, Sandt formed these two layers on top of a water-soluble film on a silicon wafer. He then submerged the wafer, with all three layers, in water to dissolve the water-soluble layer, leaving the two rubbery layers floating on the water’s surface. Finally, he carefully rolled the two transparent layers around a black rubber fiber, to produce the final colorful photonic fiber.
Page 1 of 2
Suggested Items
SEMI Applauds New Bill to Clarify Tax Credit Eligibility for Critical Semiconductor Suppliers Under U.S. CHIPS Act
05/12/2025 | SEMISEMI, the industry association serving the global semiconductor and electronics design and manufacturing supply chain, announced support of the Strengthening Essential Manufacturing and Industrial Investment Act (SEMI Investment Act), which clarifies that critical materials suppliers to semiconductor manufacturers are eligible for the Advanced Manufacturing Investment Tax Credit (“Section 48D”) created by the United States CHIPS and Science Act.
Taiwan's PCB Industry Chain Is Expected to Grow Steadily by 5.8% Annually in 2025
05/05/2025 | TPCAAccording to an analysis report jointly released by the Taiwan Printed Circuit Association (TPCA) and the Industrial Technology Research Institute's International Industrial Science Institute, the total output value of Taiwan's printed circuit (PCB) industry chain will reach NT$1.22 trillion in 2024, with an annual growth rate of 8.1%.
New Database of Materials Accelerates Electronics Innovation
05/05/2025 | ACN NewswireIn a collaboration between Murata Manufacturing Co., Ltd., and the National Institute for Materials Science (NIMS), researchers have built a comprehensive new database of dielectric material properties curated from thousands of scientific papers.
DuPont Exceeds Quarterly Profit Expectations as Electronics Segment Benefits from Semiconductor Demand
05/05/2025 | I-Connect007 Editorial TeamDuPont reported higher-than-expected earnings for the first quarter of 2025, supported by increased demand in its electronics and industrial segments. The company’s adjusted earnings per share came in at 79 cents, surpassing the average analyst estimate of 65 cents per share, according to data from LSEG.
SEMICON Europa 2025 Call for Abstracts Opens for Advanced Packaging Conference and MEMS & Imaging Summit
05/05/2025 | SEMISEMI Europe announced the opening of the call for abstracts for SEMICON Europa 2025, to be held November 18-21 at Messe München in Munich, Germany. Selected speakers will share their expertise at the Advanced Packaging Conference (APC), MEMS & Imaging Sensors Summit, and during presentations on the show floor.