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Question
magnesium oxygen magnesium oxide electrons? lost or gained? charge of magnesium lon charge of oxygen lon x. stop and think element with electron configuration # protons # electrons # valence electrons metal or nonmetal to get a full outer shell new # of electrons new charge lon that forms ex: sodium (na) 2,8,1 11 11 1 m lose 1 11 - 1 = 10 1+ na +1 ex: chlorine (cl) 2,8,7 17 17 7 nm gain 1 17 + 1 = 18 -1 cl - 1 magnesium (mg) 2,8,2 oxygen (o) 2,6 nitrogen (n) 2,5 xi. trend for lonic charge - if these charges are not on the top of your periodic table, add them now. xii. common lons formed: charges listed on slide periodic table of the elements xiii. covalent bonding a. electrons are _ between _ elements. b. covalent bonds are also called _ bonds as they form molecules.
Step1: Analyze Magnesium (Mg)
Magnesium has an electron configuration of \(2, 8, 2\). The number of protons is equal to the atomic number, so for Mg, protons \(= 12\). Electrons are also \(12\) (neutral atom). Valence electrons are \(2\). Mg is a metal (M). To get a full outer shell, it loses 2 electrons. New electrons: \(12 - 2 = 10\). Charge: \(2+\) (since it loses 2 electrons, positive charge). Ion formed: \(Mg^{2+}\).
Step2: Analyze Oxygen (O)
Oxygen has an electron configuration of \(2, 6\). Protons \(= 8\) (atomic number 8), electrons \(= 8\) (neutral). Valence electrons \(= 6\). O is a non - metal (NM). To get a full outer shell, it gains 2 electrons. New electrons: \(8 + 2 = 10\). Charge: \(-2\) (gains 2 electrons, negative charge). Ion formed: \(O^{2-}\).
Step3: Analyze Nitrogen (N)
Nitrogen has an electron configuration of \(2, 5\). Protons \(= 7\) (atomic number 7), electrons \(= 7\) (neutral). Valence electrons \(= 5\). N is a non - metal (NM). To get a full outer shell, it gains 3 electrons. New electrons: \(7+3 = 10\). Charge: \(-3\) (gains 3 electrons, negative charge). Ion formed: \(N^{3-}\).
Step4: Covalent Bonding (Part XIII)
Part A
In covalent bonding, electrons are shared between non - metal elements. This is because non - metals have relatively high electronegativities and tend to share electrons rather than transfer them (as in ionic bonding).
Part B
Covalent bonds are also called molecular bonds as they form molecules. Molecules are the basic units of covalent compounds, unlike ionic compounds which form lattices of ions.
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For the table (Stop and Think section):
- Magnesium (Mg):
- # protons: \(12\)
- # electrons: \(12\)
- # valence electrons: \(2\)
- Metal or non - metal: \(M\)
- To get a full outer shell: Lose \(2\)
- New # of electrons: \(10\)
- New Charge: \(2+\)
- Ion that forms: \(Mg^{2+}\)
- Oxygen (O):
- # protons: \(8\)
- # electrons: \(8\)
- # valence electrons: \(6\)
- Metal or non - metal: \(NM\)
- To get a full outer shell: Gain \(2\)
- New # of electrons: \(10\)
- New Charge: \(-2\)
- Ion that forms: \(O^{2-}\)
- Nitrogen (N):
- # protons: \(7\)
- # electrons: \(7\)
- # valence electrons: \(5\)
- Metal or non - metal: \(NM\)
- To get a full outer shell: Gain \(3\)
- New # of electrons: \(10\)
- New Charge: \(-3\)
- Ion that forms: \(N^{3-}\)
For Part XIII (Covalent Bonding):
- Part A: Electrons are \(\boldsymbol{shared}\) between \(\boldsymbol{non - metal}\) elements.
- Part B: Covalent bonds are also called \(\boldsymbol{molecular}\) bonds as they form molecules.