Give the periodic group number and number of valence electrons for each of the following atoms.
- (a) O
- (b) B
- (c) Na
- (d) Mg
- (e) F
- (f) S
(a)
Interpretation: The periodic group number and number of valence electron for the given atom should be identified.
Concept Introduction:
Periodic Table: The available chemical elements are arranged considering their atomic number, the electronic configuration and their properties. The elements placed on the left of the table are metals and non-metals are placed on right side of the table.
In periodic table the horizontal rows are called periods and the vertical column are called group.
There are seven periods and 18 groups present in the table and some of those groups are given special name as follows,
Valence electron: The electron is considered as valence electron if it present in outermost shell of atom which gets involved in the formation of chemical bond.
Answer to Problem 1PS
Oxygen (O) atom belongs to Group 6A and carrying six valence electrons.
Explanation of Solution
Oxygen (O) atom belongs to Group 6A so it must be carrying six valence electrons.
(b)
Interpretation: The periodic group number and number of valence electron for the given atom should be identified.
Concept Introduction:
Periodic Table: The available chemical elements are arranged considering their atomic number, the electronic configuration and their properties. The elements placed on the left of the table are metals and non-metals are placed on right side of the table.
In periodic table the horizontal rows are called periods and the vertical column are called group.
There are seven periods and 18 groups present in the table and some of those groups are given special name as follows,
Valence electron: The electron is considered as valence electron if it present in outermost shell of atom which gets involved in the formation of chemical bond.
Answer to Problem 1PS
Boron (B) atom belongs to Group 3A so it must be carrying three valence electrons.
Explanation of Solution
Boron (B) atom belongs to Group 3A so it must be carrying three valence electrons.
(c)
Interpretation: The periodic group number and number of valence electron for the given atom should be identified.
Concept Introduction:
Periodic Table: The available chemical elements are arranged considering their atomic number, the electronic configuration and their properties. The elements placed on the left of the table are metals and non-metals are placed on right side of the table.
In periodic table the horizontal rows are called periods and the vertical column are called group.
There are seven periods and 18 groups present in the table and some of those groups are given special name as follows,
Valence electron: The electron is considered as valence electron if it present in outermost shell of atom which gets involved in the formation of chemical bond.
Answer to Problem 1PS
Sodium (Na) atom belongs to Group 1A so it must be carrying one valence electron.
Explanation of Solution
Sodium (Na) atom belongs to Group 1A so it must be carrying one valence electron.
(d)
Interpretation: The periodic group number and number of valence electron for the given atom should be identified.
Concept Introduction:
Periodic Table: The available chemical elements are arranged considering their atomic number, the electronic configuration and their properties. The elements placed on the left of the table are metals and non-metals are placed on right side of the table.
In periodic table the horizontal rows are called periods and the vertical column are called group.
There are seven periods and 18 groups present in the table and some of those groups are given special name as follows,
Valence electron: The electron is considered as valence electron if it present in outermost shell of atom which gets involved in the formation of chemical bond.
Answer to Problem 1PS
Magnesium (Mg) atom belongs to Group 2A so it must be carrying two valence electrons.
Explanation of Solution
Magnesium (Mg) atom belongs to Group 2A so it must be carrying two valence electrons.
(e)
Interpretation: The periodic group number and number of valence electron for the given atom should be identified.
Concept Introduction:
Periodic Table: The available chemical elements are arranged considering their atomic number, the electronic configuration and their properties. The elements placed on the left of the table are metals and non-metals are placed on right side of the table.
In periodic table the horizontal rows are called periods and the vertical column are called group.
There are seven periods and 18 groups present in the table and some of those groups are given special name as follows,
Valence electron: The electron is considered as valence electron if it present in outermost shell of atom which gets involved in the formation of chemical bond.
Answer to Problem 1PS
Fluorine (F) atom belongs to Group 7A so it must be carrying seven valence electrons
Explanation of Solution
Fluorine (F) atom belongs to Group 7A so it must be carrying seven valence electrons
(f)
Interpretation: The periodic group number and number of valence electron for the given atom should be identified.
Concept Introduction:
Periodic Table: The available chemical elements are arranged considering their atomic number, the electronic configuration and their properties. The elements placed on the left of the table are metals and non-metals are placed on right side of the table.
In periodic table the horizontal rows are called periods and the vertical column are called group.
There are seven periods and 18 groups present in the table and some of those groups are given special name as follows,
Valence electron: The electron is considered as valence electron if it present in outermost shell of atom which gets involved in the formation of chemical bond.
Answer to Problem 1PS
Sulphur(S) atom belongs to Group 6A so it must be carrying six valence electrons.
Explanation of Solution
Sulphur (S) atom belongs to Group 6A so it must be carrying six valence electrons.
Want to see more full solutions like this?
Chapter 8 Solutions
Chemistry & Chemical Reactivity
- Name the following binary ionic compounds. (a) MgF2 (b) Bal2 (c) FeCl2arrow_forwardWhich of these elements is most likely to form ions with a2+charge?(a) Li (b) Ca (c) O (d) P (e) Clarrow_forwardName each ionic compound. In each of these compounds,the metal forms only one type of ion. (a) CsCl (b) SrBr2 (c) K2O (d) LiFarrow_forward
- Name each ionic compound. In each of these compounds, the metal forms only one type of ion.(a) LiI(b) MgS(c)BaF2(d) NaFarrow_forwardWrite a chemical formula for a compound that containstwo chlorine atoms to every one oxygen atom. (a) Cl2O(b) ClO2(c) 2ClO(d) Cl(O2)2arrow_forwardName each ionic compound. In each of these compounds, the metal forms only one type of ion. (a) Lil (b) MgS (c) BaF2 (d) NaFarrow_forward
- (b) A new element, "X", is discovered and found to have 2 electrons in its outer level. Is X a metal or non-metal? Predict the formula its ion would have in any ionic compounds it forms.arrow_forwardAtoms of each of the following elements are essential for life. Give the group name for the following elements:(a) chlorine(b) calcium(c) sodium(d) sulfurarrow_forwardHow many electrons does each of the following elements have in its outermost electron shell? Draw the Lewis Dot Structure.(a) Potassium (b) Calcium (c) Aluminumarrow_forward
- Referring only to a periodic table, give the ionic charge expected for each of these representative elements. (Type your answers using the format 1+ and 2-.)(a) P (b) Ba (c) C (d) Cl (e) Kr (f) At (g) Be (h) Rnarrow_forwardAn element X reacts with oxygen to form XO2 and with chlorineto form XCl4. XO2 is a white solid that melts at high temperatures(above 1000 °C). Under usual conditions, XCl4 is acolorless liquid with a boiling point of 58 °C. (a) XCl4 reactswith water to form XO2 and another product. What is thelikely identity of the other product? (b) Do you think thatelement X is a metal, nonmetal, or metalloid? (c) By using asourcebook such as the CRC Handbook of Chemistry and Physics,try to determine the identity of element X.arrow_forwardAn element X reacts with oxygen to form XO2 and with chlorineto form XCl4. XO2 is a white solid that melts at high temperatures(above 1000 °C). Under usual conditions, XCl4 is acolorless liquid with a boiling point of 58 °C. (a) XCl4 reactswith water to form XO2 and another product. What is thelikely identity of the other product? (b) Do you think thatelement X is a metal, nonmetal, or metalloid?arrow_forward