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Energy level

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Visualizations showing where you might find an electron around a hydrogen atom at different energy levels. Brighter areas indicate higher chances of finding the electron there.

Quantum mechanical systems or particles that are bound, meaning they are stuck in a certain space, can only have certain amounts of energy. These certain amounts are called energy levels. This is different from what we see in everyday objects, which can have any amount of energy. Energy levels are most often talked about with the electrons in atoms, ions, or molecules, which are held by the electric field of the nucleus. But energy levels can also describe the energy of nuclei or the moving energy in molecules. When a system has these certain energy levels, its energy is said to be quantized.

In chemistry and atomic physics, an electron shell, or main energy level, is like the path one or more electrons take around an atom's nucleus. The shell closest to the nucleus is called the "1 shell" (or "K shell"). The next one out is the "2 shell" (or "L shell"), then the "3 shell" (or "M shell"), and so on. Each shell can hold only a certain number of electrons: the first shell can hold up to two, the second up to eight, the third up to eighteen, and so on. Electrons are pulled toward the nucleus, so they usually fill the inner shells before moving to outer shells.

If an atom, ion, or molecule is at the lowest possible energy level, it is in the ground state. If it is at a higher energy level, it is said to be excited.

Explanation

Wavefunctions of a hydrogen atom, showing the probability of finding the electron in the space around the nucleus. Each stationary state defines a specific energy level of the atom.

Particles can only have certain amounts of energy when they are trapped, like an electron in an atom. This is because particles act like waves, and only some wave patterns fit perfectly in the space. These special amounts of energy are called energy levels.

When we measure a particle's energy, we find it has one specific energy level at a time. Learning about these energy levels helps scientists understand how atoms and molecules work, using a method called spectroscopy.

History

In the early 1800s, scientists saw special lines in sunlight. This showed that energy in atoms could only be certain values.

In 1913, a scientist named Niels Bohr said that atoms have special energy levels. In 1926, Erwin Schrödinger and Werner Heisenberg used new ideas to explain these energy levels.

Joseph von Fraunhofer William Hyde Wollaston Niels Bohr Bohr theory Schrödinger equation Erwin Schrödinger Werner Heisenberg

Atoms

Intrinsic energy levels

When an electron is part of an atom, it can only have certain specific amounts of energy. These are called energy levels. This is different from everyday objects, which can have almost any amount of energy. In an atom, the energy levels of electrons depend on how close they are to the center of the atom, called the nucleus. The closer the electron is to the nucleus, the lower its energy is.

For a simple atom with just one electron, like hydrogen, the energy levels can be calculated using a special formula. This formula shows how the energy changes based on the electron’s distance from the nucleus.

Energy levels due to external fields

Zeeman effect

When an atom is placed in a magnetic field, the energy levels of its electrons can change. This happens because the magnetic field interacts with the electron’s spin and movement. This effect is called the Zeeman effect.

Stark effect

Main article: Stark effect

Molecules

Chemical bonds form between atoms in a molecule because they create a more stable situation. When atoms come together to covalently bond, their energy levels change and create new molecular orbitals. The energy level of bonding orbitals is lower, while the energy level of antibonding orbitals is higher. For the bond to stay stable, the bonding electrons sit in the lower energy bonding orbital.

A non-bonding orbital is an orbital where electrons are in outer shells and don’t help form bonds. The energy level stays the same as in the single atom, and these electrons are often lone pairs.

Different diagrams help show these energy levels, such as molecular orbital diagrams, Jablonski diagrams, and Franck–Condon diagrams.

Energy level transitions

Further information: atomic electron transition and molecular electron transition

Electrons in atoms and molecules can change their energy levels by taking in or giving out energy as light. This light has just the right amount of energy to match the difference between the two levels.

Electrons can also be completely removed from an atom. When this happens, it is called ionization. The energy needed to remove an electron is called ionization energy. The opposite can also happen, where energy is released when electrons are added to positively charged ions. Molecules can also change their energy in other ways, such as through vibrations or rotations.

When an atom or molecule is at its lowest possible energy level, it is called the ground state. If it is at a higher energy level, it is called excited. An excited atom or molecule can return to its ground state by giving out a particle of light called a photon. The energy of this photon matches exactly the energy difference between the two levels. Scientists use tools called spectrometers to measure these photons and learn about the materials they are studying.

Crystalline materials

Crystalline solids have special areas called energy bands. Electrons can have any energy inside an empty band. Band theory shows these bands are made of many tiny energy levels packed very close together.

The most important energy levels in a crystal are the top of the valence band, the bottom of the conduction band, the Fermi level, the vacuum level, and the energy levels of any special defect states in the crystal.

Images

A scientific diagram showing how atoms emit light energy, useful for learning about physics.

Related articles

This article is a child-friendly adaptation of the Wikipedia article on Energy level, available under CC BY-SA 4.0.

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