Level 2
In the ground state, the outermost principle energy level of an argon atom is the third energy level. This energy level contains the 3s and 3p sublevels. The 3s sublevel can hold up to 2 electrons, while the 3p sublevel can hold up to 6 electrons.
There are two sublevels in the second principal energy level: the s sublevel and the p sublevel. The s sublevel can hold a maximum of 2 electrons, while the p sublevel can hold a maximum of 6 electrons.
The fourth energy level can hold a maximum of 32 electrons. This level consists of 4 sublevels (s, p, d, f), which can hold a total of 32 electrons when completely filled according to the Aufbau principle.
The lowest energy level that contains d orbitals is the third energy level. Within the third energy level, starting with the 3d sublevel, the d orbitals become available.
There are four energy sublevels in the fourth energy levels: 4s, 4p, 4d, and 4f.
In the ground state, the outermost principle energy level of an argon atom is the third energy level. This energy level contains the 3s and 3p sublevels. The 3s sublevel can hold up to 2 electrons, while the 3p sublevel can hold up to 6 electrons.
The second principle energy level is designated as the n=2 energy level in an atom. Electrons in this energy level have higher energy than those in the first energy level. The second energy level can hold up to 8 electrons.
By the first principle energy level I assume you are referring to the lowest atomic orbital or ta principal quantum number of 1. This orbital holds 1 pair of 2 electrons.
Depends on what one means by "smaller". Since sublevels are "inside" or part of the principle energy level, then yes, they are smaller.
Principal energy levels are an atom's major energy levels, ranging in value from 1 to 7. Energy sublevels are contained within principal energy levels, and their number increases as the value of the principal energy level increases.
In an argon atom, the outermost principle level is the third principle level (n=3). The sublevels that are occupied in this principle level are the s, p, and d sublevels. The s sublevel can hold a maximum of 2 electrons, the p sublevel can hold a maximum of 6 electrons, and the d sublevel can hold a maximum of 10 electrons.
There are two sublevels in the second principal energy level: the s sublevel and the p sublevel. The s sublevel can hold a maximum of 2 electrons, while the p sublevel can hold a maximum of 6 electrons.
There are five sublevels in the fifth energy level: 5s, 5p, 5d, 5f, and 5g.
The s, p, d, and f are sublevels within an electron energy level. Each sublevel can hold a specific maximum number of electrons based on their shapes and orientations. Electrons fill these sublevels based on the Aufbau principle, Pauli exclusion principle, and Hund's rule, which dictate the order and orientation in which electrons occupy the sublevels.
There are two energy sublevels in the second energy level - the s sublevel and the p sublevel. The s sublevel can hold a maximum of 2 electrons, while the p sublevel can hold a maximum of 6 electrons.
Each electron occupies the lowest energy orbital. Orbitals related to energy level are of equal energy.
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