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These rules, known as the Aufbau principle, Hund’s rule, and the Pauli exclusion principle, ensure that electrons are arranged in the most stable and efficient way possible.
Before diving into the principles of electron configuration, let’s clarify what an atomic orbital is.
Orbital
An orbital is a region of space around the nucleus where there is a high probability of finding an electron.
Each main energy level can hold a maximum of $2n^2$ electrons, where $n$ is the principal quantum number.
$$1s < 2s < 2p < 3s < 3p < 4s < 3d < 4p < 5s < 4d < 5p < 6s < 4f < 5d < 6p$$
To remember the order of orbital filling, use the diagonal rule or refer to the periodic table, as it is structured according to the filling of sublevels.
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