QUESTION IMAGE
Question
- use a periodic table to choose the best answer.
____ is a period 4 element that is most likely to lose electrons to form a cation.
br
kr
k
ge
- use a periodic table to choose the best answer.
which of these elements has the highest ionization energy?
br
f
i
at
cl
Question 6
Brief Explanations
- Br (Bromine): It is a non - metal in group 17. Non - metals tend to gain electrons to form anions.
- Kr (Krypton): It is a noble gas (group 18). Noble gases have a stable electron configuration and do not easily lose or gain electrons.
- K (Potassium): It is an alkali metal (group 1). Alkali metals have one valence electron and readily lose it to form a cation (\(K^{+}\)).
- Ge (Germanium): It is a metalloid. While it can form ions, it is not as likely as an alkali metal to lose electrons to form a cation.
Brief Explanations
- Ionization energy generally increases across a period (from left to right) and decreases down a group.
- Br (Bromine): In period 4, group 17.
- F (Fluorine): In period 2, group 17. It is the most electronegative element and has a very high ionization energy as it holds its electrons tightly.
- I (Iodine): In period 5, group 17. Its ionization energy is lower than F and Cl due to its larger atomic size.
- At (Astatine): In period 6, group 17. It has a lower ionization energy than the lighter halogens.
- Cl (Chlorine): In period 3, group 17. Its ionization energy is lower than F.
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