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Tiny robots powered by light can hunt down and collect bacteria

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Why This Matters

The development of light-powered nanorobots capable of hunting and collecting bacteria marks a significant breakthrough in microscopic manipulation, opening new possibilities for biological research, medical diagnostics, and environmental monitoring. Their ability to precisely control and transport microscopic objects could revolutionize how scientists interact with the microbial world, leading to more targeted treatments and advanced biotechnologies.

Key Takeaways

Robots small enough to operate in the microbial world could give scientists a new way to directly handle objects that are impossible to manipulate by hand. These tiny machines are around 50 times smaller than the diameter of a human hair, bringing researchers closer to the long-pursued goal of interacting directly with the microscopic world.

That capability could be especially useful for biological materials in water, including individual cells and bacteria. Precisely controlling and moving objects at this scale has been a persistent challenge. The newly developed nanorobots show that it is already possible to collect bacteria, transport them, and release them at selected locations.

Light Powers and Steers the Tiny Robots

One of the biggest obstacles in developing machines this small is finding an effective way to propel and control them. At Julius-Maximilians-Universität Würzburg (JMU), a research team led by Professor Bert Hecht has been developing a solution that uses the recoil produced by individual photons to move microscopic devices known as microdrones.

The devices contain as many as four plasmonic nanoantennas. These antennas absorb light with a particular color and helicity, then emit that light in a specific direction. Redirecting each photon creates a tiny recoil force, similar in principle to the recoil produced when a bullet is fired. Because the microdrones have so little mass, those extremely small forces can generate substantial acceleration and speed.

For the latest work, the researchers reduced the size of their light-powered robots even further, producing devices smaller than one micrometer. Simplifying the steering system was an important part of achieving that size while retaining propulsion based on photon recoil.

The new control method takes advantage of nanoscale antenna wires built into the robot. These wires naturally tend to align with the polarization direction of incoming light. By changing the light's polarization, the researchers can control which direction the nanorobot faces. At the same time, photon recoil continues to propel it forward, creating a steering system that works somewhat like the directional control used in larger vehicles.

Nanorobots Act as "Microscopic Cleaners"

"In essence, we have built a light-driven nanorobot that can track down and collect bacteria," says Jin Qin, lead experimental scientist of the study. "By simplifying the design, we reached a size at which these robots can operate directly in the microbial world - almost like microscopic cleaning devices."

The robots are also highly maneuverable. They can make extremely fast 90° turns, helping them scan broad areas of a sample in an organized and efficient way. They can also selectively capture, carry, and release substantial numbers of bacteria.

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