The air has oxygen in it. 
The air has oxygen in it.
Oxygen is very special. It has tiny parts called electrons. Two of these parts do not have a partner. They spin in the same way. 
This makes oxygen act like a magnet. It can be pulled by a magnet. You can even see this in liquid oxygen. It can hang in the air between magnets.
Because of its parts, it does not react with everything. It needs heat or help to burn. Oxygen is a very cool part of our world.
Oxygen is a gas in our air. It has a special state called triplet oxygen. This name describes how its tiny parts work. These tiny parts are called electrons.
In triplet oxygen, two electrons are unpaired. This means they do not have a partner. They spin in the same direction. This makes oxygen paramagnetic. This means it can be pulled by a magnet. 
You can see this in liquid oxygen. If you pour it between strong magnets, it can hang in the air. A magnet can also pull the stream of liquid.
This electron setup also changes how oxygen acts. It does not react with many other things easily. It needs extra energy to start a change. This extra energy can come from heat. This is why some things need a spark to burn. Some things, like white phosphorus, react very fast. Other things need a high temperature to catch fire. This helps us understand how things burn in the air.
Oxygen is a gas that surrounds us all the time. Most of the time, it exists in a state called triplet oxygen. This name describes the way its tiny parts, called electrons, are arranged.
Inside a molecule of oxygen, there are two special electrons. These electrons are unpaired, which means they do not have a partner. Instead, they sit in two separate spots called orbitals. These orbitals have the same amount of energy. According to Hund's rules, these electrons stay unpaired and spin in the same direction. 
Scientists use different ways to study these tiny parts. Linus Pauling created a way to draw these parts called a Lewis structure. However, the standard Lewis structure does not show oxygen perfectly. It makes it look like all electrons are in pairs. Scientists found that molecular orbital theory works much better. This theory explains why the bond is a certain length. 
One of the most amazing facts is about magnets. Because of those unpaired electrons, oxygen is paramagnetic. This means it can be attracted to the poles of a magnet. You can see this clearly if you cool oxygen into a liquid. If you pour liquid oxygen between strong magnets, it can actually hang in the air.
This electron setup also controls how oxygen reacts with other things. The unpaired electrons make it hard for oxygen to react with many molecules. Most molecules are in a state called a singlet state. To react, the oxygen needs extra energy. This can come from high heat or a special catalyst. 
Triplet oxygen is the most common form of molecular oxygen, also known as dioxygen. It refers to the specific electronic ground state of the molecule. In this state, the molecule is considered a diradical. This means it contains two unpaired electrons. While most stable molecules have electrons that exist in pairs, triplet oxygen is a rare example of a stable molecule with unpaired electrons. This unique arrangement is why oxygen behaves the way it does in our atmosphere and in chemical reactions.
To understand how triplet oxygen works, we must look at molecular orbital theory. This theory describes how electrons occupy different spaces called orbitals. In triplet oxygen, two electrons occupy two different pi molecular orbitals, or $\pi$ MOs. These two orbitals are degenerate, which means they have the exact same energy level. According to Hund's rules, electrons in these types of orbitals will remain unpaired. They also maintain spin-parallel alignment, meaning they spin in the same direction. This specific configuration is what makes the molecule's ground state a triplet state.
This electron arrangement affects the strength of the bond between the oxygen atoms. These half-filled orbitals are antibonding in character. Antibonding orbitals actually work to reduce the strength of a chemical bond. Because of this, the bond order of triplet oxygen is 2. For comparison, dinitrogen has a bond order of 3 because its antibonding orbitals are empty. The oxygen-oxygen bond is also described as one full sigma bond plus two pi half-bonds. Each of these half-bonds is a two-center three-electron bond. This specific structure explains why the bond is shorter than a single bond but not as strong as a triple bond.
Scientists have used different models to try and represent this structure. One common method is the Lewis structure, which was used by Linus Pauling. 
One of the most famous properties of triplet oxygen is paramagnetism. A substance is paramagnetic if it can be attracted to the poles of a magnet. This happens because of the net magnetic moment created by the total electron spin. You can observe this phenomenon most clearly in a liquid state. If you cool oxygen down until it becomes a liquid, its magnetic nature becomes very obvious. You can pour liquid oxygen between the poles of strong, close magnets and watch it stay suspended in mid-air. A magnet can also visibly pull the stream of liquid oxygen as it is being poured.
The electron configuration of triplet oxygen also dictates how it reacts with other substances. Most other molecules exist in a singlet state, where their electrons are all paired. Because triplet oxygen has unpaired electrons, it does not react directly with many singlet molecules at room temperature. A reaction would require a triplet transition state to conserve the spin quantum number. This requires a significant amount of extra energy. Because of this energy barrier, triplet oxygen is actually quite stable in our air. 
However, triplet oxygen will react readily with molecules that are in a doublet state. This reaction forms a new radical. If you provide enough energy, such as high temperatures or a catalyst, the reaction can happen more easily. For example, white phosphorus is a substance that reacts very quickly with oxygen. Many other flammable substances have an autoignition temperature. This is the temperature at which they will undergo combustion in the air without needing an external spark or flame. This entire process is controlled by the way the spins of the electrons interact during the chemical change.
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