Concept explainers
Interpretation:
The metals
Concept Introduction:
The electronic configuration is defined as the distribution of electrons in various atomic orbitals of the atom. The electrons that are present in an outermost orbital are known as valence electrons whereas those present in the orbitals with lower quantum numbers are called core electrons. The general outer electronic configuration of
Electrons are filled in orbitals in accordance with three rules: Aufbau principle, Hund’s rule, and Pauli’s exclusion principle. Aufbau principle states that electrons are filled in the orbitals from lower to higher energy level as follows:
Hund’s rule states that initially each orbital is singly occupied and then pairing occurs and Pauli’s exclusion principle states that the spin of two electrons in one orbital is always different.
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Chemistry: Principles and Practice
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- Fluoride ion, F, has no unpaired electrons. Vanadium forms four binary fluoridesVF2, VF3, VF4, and VF5. Assume that all four are ionic compounds. (a) Which fluoride is diamagnetic? (b) Which fluoride has the greatest attraction to a magnetic field? (c) Which fluoride has two unpaired electrons per vanadium?arrow_forwardMatch each element on the right with a set of characteristics on the left. a A reactive, pale yellow gas; the atom has a large electron affinity b A soft metal that reacts with water to produce hydrogen c A metal that forms an oxide of formula R2O3 d A colorless gas; the atom has a moderately large negative electron affinity Oxygen (O2) Gallium (Ga) Barium (Ba) Fluorine (F2)arrow_forward
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