Some things glow in the dark. They soak up bright light. Then they let the light out slowly. This can be toys or stickers. It looks like magic! Do you have a glow toy?
Some things glow in the dark. These things soak up bright light. Then they let the light out slowly. This is called phosphorescence.
You might see this on stickers or toys. 
Light gets trapped inside the material. It stays there for a while. Then the light slowly leaks out. This makes the object shine in a dark room.
This glow is not heat. It is just light. It is a very cool way to see things shine.
Have you ever seen a toy glow in the dark? This glow is called phosphorescence. It happens when a material soaks up light. Then, it lets that light out slowly. 
There are two main ways this happens. One way involves electrons. Electrons are tiny parts of an atom. When an electron soaks up light, it can get stuck in a special state. We call this a triplet state. It is hard for the electron to move back to its normal spot. This makes the light come out slowly. 
Another way involves tiny holes in a material. These holes are called defects. An electron can fall into a defect like a pitfall. It stays trapped there until it gets a boost of heat. This heat helps the electron jump out. When it jumps, it lets out light. This is how many glow-in-the-dark stickers work.
Have you ever wondered why some toys glow in the dark? This amazing glow is called phosphorescence. It is a type of light called photoluminescence. This happens when a substance soaks up light energy. Then, it releases that energy as a glow. This is different from fluorescence. Fluorescent things stop glowing almost instantly when the light goes away. Phosphorescent things can keep glowing for a long time. They might glow for a few seconds or many hours. 
There are two main ways this light-making works. The first way is called triplet phosphorescence. It starts when an atom soaks up a high-energy photon. A photon is a tiny particle of light. This energy moves an electron into a special state. This state is called a triplet state. In this state, the electron is stuck in a way that makes it hard to move. It has to make a "forbidden" transition to get back to normal. These transitions happen very slowly. Because they are slow, the light comes out as a dim afterglow. 
The second way is called persistent phosphorescence. This happens when an electron gets trapped in a defect. A defect is like a tiny hole or a missing atom in a material. You can think of it like a pitfall that catches an electron. The electron stays trapped in that pitfall for a while. It needs a little boost of thermal energy to escape. Thermal energy is just heat from the surroundings. Once the electron gets enough heat, it jumps out of the trap. When it jumps, it releases light. 
People have been studying these glowing materials for a long time. The word phosphorescence comes from Ancient Greek. It means "having a tendency to bear light." The term was first recorded in 1766. In 1604, Vincenzo Casciarolo found a glowing stone near Bologna, Italy. He called it "lapis solaris." Later, in 1898, Henri Becquerel made a big discovery. He noticed that uranium salts could fog photographic plates even in the dark. This led to the study of radioactive decay. Marie Curie later worked on these ideas and won a Nobel Prize in 1903. 
You can see phosphorescence in many things every day. Many glow-in-the-dark stickers use these materials. You might also see them on clock dials or in special paint. Even some watches use them so you can see the time in the dark. Scientists use these materials for many jobs too. They use them in fluorescent lamps to stop the light from flickering. They also use them in old television sets to help make a clear picture. It is a useful way to store and release light. 
Phosphorescence is a specific type of photoluminescence. Photoluminescence occurs when a substance absorbs light radiation and then re-emits it. 

Scientists classify these light-emitting events by their specific mechanisms and timescales. The first mechanism is known as triplet phosphorescence. This occurs when an atom absorbs a high-energy photon. This photon provides energy to an electron. The electron then undergoes a process called intersystem crossing. This moves the electron from a fluorescent singlet state to a slower triplet state. In quantum mechanics, the electron must make "forbidden" energy state transitions to return to its original state. These transitions are kinetically unfavored, meaning they happen very slowly. This results in a dim emission that lasts from microseconds to about one second. 
The second mechanism is called persistent phosphorescence, or persistent luminescence. This process involves electrons becoming trapped within a material. This can happen in a crystalline or amorphous lattice. Specifically, an electron might fall into a defect, such as a vacancy defect. A vacancy defect is essentially a missing atom in the structure. You can think of this defect as a pitfall that catches the electron. The electron stays trapped there until it receives a random spike of thermal energy. This thermal energy provides the vibrational boost needed for the electron to escape. Once released, the atom emits light. This type of glow can last for several hours. 
History shows that the study of these materials has changed science forever. The word phosphorescence comes from the Ancient Greek "phos," meaning light. The term was first recorded in 1766. Long before that, people used the term "phosphor" for glowing minerals. In 1604, Vincenzo Casciarolo discovered a substance called "lapis solaris" near Bologna, Italy. After being heated in an oxygen-rich furnace, it could absorb sunlight and glow. In 1898, Henri Becquerel made an accidental discovery involving uranium salts. He noticed these salts could fog photographic plates even in a dark drawer. This led to the discovery of radioactive decay. This work inspired Marie Curie, and both scientists won a Nobel Prize in 1903.
We see phosphorescence in many common objects today. Glow-in-the-dark toys and stickers are popular examples. Many people also see it on clock dials or in special paints. Some wristwatches use phosphorescent elements so they can be read in the dark. 
There has been much confusion regarding scientific terms in the past. In the late nineteenth and mid-twentieth centuries, many people mixed up luminescence and fluorescence. The term "luminescence" was coined by Eilhardt Wiedemann in 1888. He used it to describe "light without heat." Sir George Stokes coined "fluorescence" in 1852. He noticed certain solutions glowed when exposed to ultraviolet light. It was not until the 1950s and 1960s that science could clearly distinguish these processes. Advances in spectroscopy and lasers allowed for precise measurements. We can now separate the different mechanisms that cause a substance to glow. 
Understanding these mechanisms is vital for modern technology. Different materials are chosen based on their specific emission times. A material used for a laser must be very different from a material used for a glow-in-the-dark sticker. For instance, some liquid dyes used in lasers can actually suffer from unwanted phosphorescence. This can be a problem that scientists must solve using triplet-quenching agents. Because persistent phosphorescence relies on thermal energy, it is also highly dependent on temperature. This connection shows how the tiny movements of atoms can control the light we see around us.
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