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There is 1 5s orbital
2s: 2 electrons 5p: 6 4f: 14 3d: 10 4d: 10
The 5p sublevel is completed with 6 electrons with the addition of the element radon (Rn).
Xenon has 54 electrons in total. Its electron configuration is [Kr] 4d^10 5s^2 5p^6, which means it has 46 core electrons (from the noble gas core of krypton - [Kr]) and 8 valence electrons.
The element with a half-filled 5p level is antimony, which has the electron configuration [Kr] 4d^10 5s^2 5p^3. The half-filled 5p level stabilizes the atom, making antimony less likely to gain or lose electrons.
Barium (Ba) has an atomic number of 56, meaning it has 56 electrons. The electron configuration for barium is [Xe] 6s², indicating that it does not have any electrons in the 5p subshell. Therefore, barium contains 0 electrons in the 5p subshell.
There is 1 5s orbital
Iodine has a total of 7 electron shells, with the electron configuration of [Kr] 4d¹⁰ 5s² 5p⁵. In its ground state, iodine has electrons in the following orbitals: 5s, 5p, 4d, and 4p. Specifically, the orbitals that contain electrons are the 4d (10 electrons), 5s (2 electrons), and 5p (5 electrons), totaling 3 different types of orbitals with electrons. Thus, there are 3 distinct orbital types containing electrons in iodine.
Stadium (St) is an element with the atomic number 51. It has a ground-state electron configuration of [Kr] 4d¹⁰ 5s² 5p³. In this configuration, the 5p subshell has three electrons, which are unpaired. Therefore, there are three unpaired electrons in stadium.
Indium (In) has 46 electrons in total. Its electron configuration is [Kr] 4d¹⁰ 5s² 5p¹, meaning it has 36 core electrons (those in the noble gas configuration of krypton) and 10 valence electrons (from the 4d, 5s, and 5p orbitals). Thus, the number of core electrons in indium is 36.
The valence electrons of iodine are located in the 5p orbital. Iodine has an atomic number of 53, and its electron configuration is 1s² 2s² 2p⁶ 3s² 3p⁶ 4s² 4p⁶ 5s² 5p⁵. The five valence electrons in the 5th energy level are distributed in the 5s and 5p orbitals, with the 5p orbital containing the unpaired electrons that participate in bonding.
2s: 2 electrons 5p: 6 4f: 14 3d: 10 4d: 10
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In iodine (I), the electron configuration is [Kr]5s²4d¹⁰5p⁵. This means that there are 10 electrons in the 4d orbital.
The 5p sublevel is completed with 6 electrons with the addition of the element radon (Rn).
The element with a half-filled 5p level is antimony (Sb), which has an electron configuration of [Kr] 4d^10 5s^2 5p^3. It has five electrons in its 5p orbital, meaning it half fills the 5p level.
if question isHow many 5p's are in £22 x 5p = 10p20 x 5p = 100p = £140 x 5p = 200p = £2Answer: forty