Tiny bits of energy fly through a tube. 
Tiny bits of energy fly through a glass tube. 
In 1914, James Franck and Gustav Hertz did a big test. They used a glass tube filled with mercury vapor. 
Sometimes the electrons hit an atom and just bounce off. This is an elastic collision. The electron changes direction but keeps its speed.
Other times, the electrons hit an atom much harder. This is an inelastic collision. The electron gives 4.9 electron volts of power to the atom. An electron volt is a tiny unit of energy. When this happens, the electron slows down a lot.
The mercury atom takes that power and gets excited. Soon, the atom lets out a flash of ultraviolet light.
This test proved the Bohr model was right. Niels Bohr said electrons live in specific energy levels. They cannot stay between these levels. The electrons in the mercury atoms jumped from a low level to a higher one. This work won the Nobel Prize in Physics in 1925.
The Franck–Hertz experiment is a famous test in science. It showed us how atoms actually work. 
To see this, scientists used a special glass tube. Inside the tube, there was a thin vapor of mercury atoms. 
James Franck and Gustav Hertz performed this work in 1914. They presented their findings to the German Physical Society in April.
When the mercury atom gets that 4.9 electron volts of energy, it becomes excited.
This experiment links to how we understand light and energy today. It confirmed the work of many great scientists. Niels Bohr used ideas from Hendrik Lorentz to build his model. Even Albert Einstein was impressed by these results. He once said the discovery was so lovely it makes you cry. Because of this amazing work, Franck and Hertz won the Nobel Prize in Physics in 1925. They showed us that the tiny world of atoms follows very strict rules.
The Franck–Hertz experiment is a landmark in the history of physics. It provided the first electrical measurement that clearly demonstrated the quantum nature of atoms. 
To perform the experiment, James Franck and Gustav Hertz used a specialized vacuum tube. 
As the electrons travel through the mercury vapor, they experience two different types of collisions.
In an inelastic collision, the electron transfers exactly 4.9 eV of energy to the mercury atom.
Franck and Hertz measured these collisions by tracking the electric current in the tube.
These results were revolutionary because they supported the Bohr model of the atom.
The significance of this work cannot be overstated. The discovery of the laws governing how electrons impact atoms earned Franck and Hertz the Nobel Prize in Physics in 1925.
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