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Question
relative electronegativity quick check 1 of 5 use the periodic table to answer the question. how would the electron configuration of nitrogen change to make a stable configuration? (1 point) it would gain three electrons. it would lose four electrons. it would lose five electrons. it would gain two electrons.
Step1: Determine nitrogen's valence electrons
Nitrogen (N) has an atomic number of 7. Its electron configuration is \(1s^{2}2s^{2}2p^{3}\). The valence shell (second shell) has 5 electrons (\(2s^{2}2p^{3}\)).
Step2: Recall the octet rule
Atoms tend to gain, lose, or share electrons to achieve a full - valence - shell (8 electrons in the outermost shell, except for some small atoms like H).
Step3: Calculate the number of electrons to gain
To achieve an octet in the second shell (which can hold up to 8 electrons), nitrogen needs \(8 - 5=3\) more electrons. So it would gain three electrons.
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It would gain three electrons.