Level 1 - Absolute Beginner
Scientists in Germany made tiny robots. The robots are very, very small. They are about 50 times smaller than one hair from your head.
The robots do not have batteries. They do not have wires or motors. Instead, light pushes them forward. Small parts on each robot catch light and send it back out. This makes a tiny push, like a rocket.
The scientists can also steer the robots. They change the light to turn the robot left or right. The robots can find bacteria in water. They pick up the bacteria and carry them to a new place.
This new technology can help scientists study very small living things. One day, robots like these might even work inside the human body.
- robot
- A machine that can move and do tasks.
- tiny
- Very, very small.
- light
- The brightness that lets us see; energy from a lamp or the sun.
- push
- A force that makes something move forward.
- bacteria
- Very tiny living things too small to see without help.
- scientist
- A person who studies the world and does experiments.
- motor
- A part of a machine that makes it move.
- battery
- A small device that stores power for a machine.
Level 2 - Elementary
Researchers at a university in Germany, called Julius Maximilians University Würzburg, have built extremely small robots. Each robot is less than one micrometer in size, which makes it about 50 times smaller than the width of a human hair.
These robots move without any batteries, wires, or motors. Instead, they use a method called photon recoil. Tiny antennas on the robot catch light and send it back out in one direction. This creates a small push, similar to how a rocket moves forward by pushing gas out the back.
Scientists can steer the robots by changing the direction of the light. Special wires on each robot line up with the light, so turning the light changes which way the robot faces and moves.
The robots can swim through liquid, find single bacteria, pick them up, and drop them off at a chosen spot. This could help scientists study bacteria more closely and may lead to tiny robots that work inside the human body someday.
- researcher
- A person who studies a topic carefully to learn new things.
- university
- A school where people study advanced subjects.
- micrometer
- A unit of measurement equal to one millionth of a meter.
- antenna
- A small part that can catch or send out signals or light.
- recoil
- A backward push caused by something moving forward.
- polarization
- The direction in which light waves vibrate.
- liquid
- A substance, like water, that flows and takes the shape of its container.
- biomedical
- Relating to both biology and medicine.
Level 3 - Intermediate
A team of researchers at Julius Maximilians University Würzburg in Germany has developed microscopic robots that are propelled entirely by light, without relying on any batteries, wires, or onboard motors. Measuring less than one micrometer, each robot is roughly 50 times smaller than the diameter of a human hair, making it invisible to the naked eye.
The robots move using a phenomenon called photon recoil. Plasmonic nanoantennas embedded in each robot absorb incoming light and re-emit the photons in a specific direction. Because every emitted photon carries momentum, this directional release generates a tiny recoil force that pushes the lightweight robot forward, much as a rocket is propelled by expelling exhaust in the opposite direction.
Steering is achieved through polarization. Nanoscale antenna wires built into each robot naturally align themselves with the polarization direction of the incoming light, so by rotating that polarization, researchers can control which way a robot faces and, consequently, where it travels.
Because the robots require no onboard power source, they can be guided purely with an external light source, an approach that echoes the established technique of optical tweezers. Researchers see potential applications in microbiology and biomedical research, such as gathering bacteria from a liquid sample and delivering them to a precise location for closer study, and the work adds to a growing body of research into microscopic robots that may eventually operate inside the human body.
- plasmonic
- Relating to the interaction between light and free electrons on a metal surface at the nanoscale.
- nanoantenna
- An extremely small antenna, built at the nanometer scale, used to catch or emit light.
- momentum
- A physical property of a moving object or particle related to its mass and velocity.
- polarization
- The specific direction in which a light wave's oscillations are oriented.
- propulsion
- The action or process of driving something forward.
- microbiology
- The scientific study of microorganisms such as bacteria.
- biomedical
- Relating to the application of biological science to medical research or practice.
- optical tweezers
- A scientific tool that uses a focused beam of light to hold and move tiny objects.
Level 4 - Advanced
Engineers at Julius Maximilians University Würzburg in Germany have unveiled a class of microscopic robots that dispense with every conventional component of robotic locomotion, no batteries, no wires, no onboard motor, relying instead on light itself as both fuel and steering mechanism. At under one micrometer across, each device is roughly fifty times narrower than a human hair, a scale at which the very notion of a robot strains against ordinary intuition.
Propulsion derives from a subtle effect known as photon recoil. Plasmonic nanoantennas patterned onto each robot absorb ambient light and re-emit it preferentially in one direction; since every photon carries momentum, this asymmetric emission imparts an equal and opposite recoil to the robot, nudging it forward in miniature imitation of a rocket's exhaust. The mechanism requires no chemical fuel and no electrical circuitry, only a steady supply of photons.
Directional control exploits polarization rather than intensity. Nanoscale antenna wires integrated into the robot's structure align spontaneously with the polarization axis of the incident light, so rotating that axis reorients the robot and, by extension, its trajectory, a form of remote steering conceptually related to optical tweezers but achieved without any physical tether.
The payoff, researchers argue, lies less in the spectacle than in the utility: a robot this small and this cheaply actuated could, in principle, be dispatched into a liquid sample to isolate individual bacteria and ferry them to a precise location for study, a task of considerable value to microbiologists and biomedical researchers alike. The 2026 findings, reported in outlets including ScienceDaily and Wiley Analytical Science, join a fast growing body of work on micro and nanorobots designed to operate within fluids and, its proponents hope, eventually within the human body itself.
- locomotion
- The ability to move from one place to another.
- plasmonic
- Pertaining to collective oscillations of electrons at a metal surface excited by light.
- recoil
- A reactive backward force produced in response to a forward action or emission.
- momentum
- A measure of the motion of a body, dependent on its mass and velocity, that is conserved in physical interactions.
- polarization
- The orientation of the oscillations of a light wave, which can be manipulated to control direction-sensitive devices.
- trajectory
- The path followed by a moving object through space.
- actuated
- Made to move or operate, typically by an external force or mechanism.
- nanorobot
- A robot built at the nanometer scale, far smaller than the width of a human hair.