Self-powered Implantable Device Stimulates Fast Bone Healing, Disappears Without a Trace
July 8, 2021 | Jason Daley, University of Wisconsin–MadisonEstimated reading time: 4 minutes
In 2017, Green Bay Packers quarterback Aaron Rodgers broke his right collarbone in a game against the Minnesota Vikings. Typically, it takes about 12 weeks for a collarbone to fully heal, but by mid-December fans and commentators were hoping the three-time MVP might recover early and save a losing season.
So did Xudong Wang, a professor of materials science and engineering at the University of Wisconsin–Madison and an expert in creating thin, movement-powered medical devices. “I started wondering if we could provide a new solution to bring athletes back to the field quicker than ever,” Wang says.
Researchers know that electricity can help speed up bone healing, but “zapping” fractures has never really caught on, since it requires surgically implanting and removing electrodes powered by an external source.
A major update of that same electrostimulation concept, Wang’s latest invention didn’t come in time to help the 2017 Packers — however, it may help many others by making electrostimulation a much more convenient option to speed up bone healing.
His thin, flexible device is self-powered, implantable and bioresorbable, so once the bone is knitted back together, the device’s components dissolve within the body.
Wang and his collaborators, including Weibo Cai, a UW–Madison professor of radiology and medical physics, described the new device in the journal Proceedings of the National Academy of Sciences.
Bone is a piezoelectric material, meaning it produces a tiny bit of electricity when placed under strain. These jolts of electricity stimulate factors that promote bone growth and healing, which is why electrostimulation is an effective therapy.
While there are external stimulators that create an electric field to accelerate healing indirectly, the ideal solution is stimulating the bone directly. Putting the device inside the body, however, has unique requirements — not the least of which is powering it, according to Wang.
“The ideal case is to have the device be self-generating, which was something that didn’t exist before this,” he says.
To create the new fracture electrostimulation device, or FED, Wang and his team started with a triboelectric nanogenerator, a thin-film device with microstructured surfaces that converts mechanical energy produced by tiny movements into electric power. They coupled the nanogenerator with a pair of electrodes to distribute the electric field to the bone. They built these ultrathin, biodegradable and bioresorbable components on a substrate of poly(lactic-co-glycolic acid), a commonly used FDA-approved biocompatible polymer.
The researchers’ initial tests confirmed that small movements of the device did indeed create an electrical stimulation of about 4 volts, which it could sustain for over six weeks. They then tested the device on rats.
The animals implanted with the device completely recovered from a tibia fracture in about six weeks, much more quickly than animals in a control group. The mineral density and flexural strength of the healed bones also reached the same level as healthy bones in the animals that received the electrostimulation. After the treatment, the devices degraded and absorbed into the rats’ bodies with no complications and no need for surgical removal.
Wang says that it’s possible to fine-tune how long the stimulator will last within the body — from weeks to months — by tweaking the properties of the bioresorbable material coating the device.
The thin, flexible device is self-powered, implantable and bioresorbable, so once the bone is knitted back together, the device’s components dissolve within the body.
Eventually, Wang would like to scale up the fracture electrostimulation device so it will work in humans. But for these self-powered devices, the energy source can be a factor.
“Typically, when someone has a broken bone, they need to restrict their movement,” he explains.
In other words, someone wearing a cast might not produce enough mechanical energy to power the triboelectric nanogenerato
“The way a rat moves provides constant stimulation for the device, but for a broken bone in a human that can’t be moved, that’s an issue,” says Wang.
However, the human body provides virtually endless sources of movement that could power the fracture electrostimulation device if the broken bone must remain immobile. “We may need the device to respond to other types of internal mechanical sources, like blood pressure changes,” says Wang, who’s already looking to the FED’s future.
“It will be very interesting and impactful to address the development from animal to human,” he says.
Cai is also excited to continue the work.
“Our continued collaborations over the last decade have been very productive and highly synergistic,” says Cai, who has worked with Wang to create a bandage that works along similar principles and an implantable weight loss device, among other projects. “The Wang group designs and fabricates many intriguing devices, and our group can test those in vivo in various small animal models for subsequent large animal studies and potential clinical translation.”
Other UW–Madison authors include Jun Li, Kangning Zhao and Weina Xu. Guang Yao and Lei Kang of UW–Madison and of Peking University First Hospital; Cuicui Li and Junzhe Yang of Peking University First Hospital; Sihong Chen, Qian Wang and Yuan Lin of the University of Electronic Science and Technology of China, Chengdu; and Yin Long of UW–Madison and the University of Science and Technology of China also contributed.
Testimonial
"In a year when every marketing dollar mattered, I chose to keep I-Connect007 in our 2025 plan. Their commitment to high-quality, insightful content aligns with Koh Young’s values and helps readers navigate a changing industry. "
Brent Fischthal - Koh YoungSuggested Items
Elkem Launches Biocompatible, Conductive SILBIONE LSR for Advanced Medical Devices
10/23/2025 | PRNewswireElkem ASA, a global leader in advanced silicon-based materials, unveiled SILBIONE LSR Select EC 70, a next-generation medical-grade liquid silicone rubber. Designed for wearable and diagnostic devices, the material combines high electrical conductivity, certified biocompatibility1, and enhanced process control, setting a new standard for precision healthcare applications.
OE-A Business Climate Survey: Solid Growth for the Flexible and Printed Electronics Industry
10/21/2025 | OE-AFor 2026 the industry has more positive expectations, with a sales forecast of +14 percent, which has even increased slightly compared to the beginning of the year. Further encouraging signs include improved employment prospects. 30 percent of companies plan to increase their workforce in the coming months — up from 10 percent in February.
FCT Leverages Flex Design and Total Build Solutions to Drive Innovation
10/22/2025 | Marcy LaRont, PCB007 MagazineWhat’s hot in flexible circuits right now? At PCB West, I spoke with Ben Savage, business development manager at Flexible Circuit Technologies (FCT), about their flex design services and end-markets where FCT sees the most flex activity. We also discussed the company’s focus on providing supply chain resiliency, as well as the constant search for new flex engineers. If you’re looking for a new opportunity in flexible circuits, FCT is hiring.
Elephantech's SustainaCircuits FPC Adopted for Mass Production in OM Digital Solutions’ Interchangeable Lens
10/06/2025 | ElephantechElephantech Inc. is pleased to announce that its proprietary flexible printed circuits (FPCs) have been adopted for mass production by OM Digital Solutions Corporation in the company’s latest flagship products.
Industry Expert, Mark Finstad From Flexible Circuit Technologies Presents Ask the Flexperts at PCB West
09/22/2025 | Flexible Circuit TechnologiesFlexible Circuit Technologies., Inc/FCT is excited to announce its upcoming session, Ask the Flexperts taking place Thursday, October 2nd, from 9:00–11:00 AM at PCB West 2025. The session will be led by Mark Finstad, Director or Applications Engineering at FCT, who brings over 40 years of experience in the design, fabrication, and testing of flexible and rigid-flex circuits. Mark is an internationally recognized authority in the field, making this a must-attend event for PCB designers, engineers, and industry professionals.