The animal kingdom has influenced several robot designs over the years to solve fundamental challenges in propulsion and movement — from horses to insects. Now, frogs are the latest creatures to inspire roboticists.
As seen in a new study published Sept. 18 in the journal Science Advances, researchers probed how twisting bent elastic rods could produce a “snapping motion” that enabled a small robot to hop or swim. This mechanism could be used to improve robots with limited power and ones that need to traverse rough terrain and even water, the scientists said in the study.
They also built a prototype to demonstrate the work. The palm-sized robot weighs just 3.4 ounces, or about as much as a deck of playing cards. It moves about three body lengths per second — launching itself forward with short jumps.
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“The broader opportunity is to let the mechanics of the robot do some of the work that would otherwise require larger motors or more complicated control,” Xiaonan (Sean) Huang, an assistant professor of robotics at the University of Michigan and co-first author of the study, said in a statement.
“By programming when an elastic structure stores and rapidly releases energy, we can give small robots access to powerful, repeatable motions without continuously demanding high output from the motor,” Huang explained. “In the future, this principle could be useful for robots that must navigate cluttered terrain, overcome obstacles, reorient quickly, or operate across both land and water.”
Tiny robots can hop or swim. – YouTube
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Snap movements
When a flexible rod bends and its ends are rotated, it can eventually reach a point where it changes shape to release built-up tension, the roboticists said. However, this change does not always happen in the same way. Some combinations of bending and twisting cause the rod to change shape gradually, while other combinations force it to snap rapidly from one shape to another, with the potential to provide a strong push.
The team used computer modeling and experimentation with a robotic arm to repeatedly deform the rods and find an optimal shape. In this case, they settled on a helix similar to a coiled spring to give the rod its maximum release of energy, the team reported.
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With the ideal propulsion mechanism, the team then designed and built real robots that used the snapping rods to hop. They connected these rods to a rotating motor, with the bent rods twisted until they produced the snapping motion. Then, the motor unwound the twist and contorted the rod again.
“Because the design rules depend on the rod’s shape and how its ends are moved, they work across different sizes and scales,” Khalid Jawed, an associate professor at UCLA’s School of Engineering and co-first author of the study, said in the statement.. “This opens a promising path toward miniaturized robots just a few millimeters in size that turn small motor movements into powerful bursts of motion,” said Jawed, whose lab worked on the simulation and robot arm experiments.
The final form of the prototype was a frog-like robot with a pair of snapping rods at the rear of its main body. Tests included hopping over a broad range of surfaces, including solid materials like wood and glass, as well as trickier soft and slippery surfaces that used materials like leather. The scientists also tested the robot outdoors on sand and grass, noting that it could even climb and descend steps and, with paddle attachments, swim.
By using only one of the snapping rods, the team enabled the robot to turn and, with a remote control, navigate a small obstacle course.
Tong, D., Wang, J., Chen, Z., Borum, A., Huang, W., Huang, X., & Jawed, M. K. (2026). Geometry-controlled instability pathway selection in elastic helices enables fast, efficient robotic locomotion. Science Advances, 12(38), eaeh2779. https://doi.org/10.1126/sciadv.aeh2779