Balance each of the following chemical equations. a. KO 2 ( s ) + H 2 O( l ) ⟶ KOH( aq ) + O 2 ( g ) + H 2 O 2 ( aq ) b. Fe 2 O 3 ( s ) + HNO 3 ( aq ) ⟶ Fe(NO 3 )( aq ) + H 2 O( l ) c. NH 3 ( g ) + O 2 ( g ) ⟶ NO( g ) + H 2 O ( g ) d. PCl 5 ( l ) + H 2 O( l ) ⟶ H 3 PO 4 ( aq ) + HCl( g ) e. CaO( s ) + C ( s ) ⟶ CaC 2 ( s ) + CO 2 ( g ) f. MoS 2 ( s ) + O 2 ( g ) ⟶ MoO 3 ( s ) + SO 2 ( g ) g. FeCO 3 ( s ) + H 2 CO 3 ( aq ) ⟶ Fe(HCO 3 ) 2 ( aq )
Balance each of the following chemical equations. a. KO 2 ( s ) + H 2 O( l ) ⟶ KOH( aq ) + O 2 ( g ) + H 2 O 2 ( aq ) b. Fe 2 O 3 ( s ) + HNO 3 ( aq ) ⟶ Fe(NO 3 )( aq ) + H 2 O( l ) c. NH 3 ( g ) + O 2 ( g ) ⟶ NO( g ) + H 2 O ( g ) d. PCl 5 ( l ) + H 2 O( l ) ⟶ H 3 PO 4 ( aq ) + HCl( g ) e. CaO( s ) + C ( s ) ⟶ CaC 2 ( s ) + CO 2 ( g ) f. MoS 2 ( s ) + O 2 ( g ) ⟶ MoO 3 ( s ) + SO 2 ( g ) g. FeCO 3 ( s ) + H 2 CO 3 ( aq ) ⟶ Fe(HCO 3 ) 2 ( aq )
Interpretation: A balanced form of the given chemical equations is to be stated.
Concept introduction: According to the law of conservation of mass, mass can neither be created nor destroyed. The mass of reactants is equal to the mass of products formed during a chemical process.
To determine: A balanced form of the given chemical equation.
Explanation of Solution
According to the law of conservation of mass, mass can neither be created nor destroyed. The mass of reactants is equal to the mass of products formed. Therefore a chemical equation, having lesser number of moles of an element on either side of a reaction, is balanced using appropriate numerical coefficients to satisfy the law of conservation of mass.
The given reaction is,
KO2(s)+H2O(l)→KOH(aq)+O2(g)+H2O2(aq)
Adding the coefficient
2 to
H2O balances the number of atoms of hydrogen present on either side of the reaction. The equation thus obtained is,
KO2(s)+2H2O(l)→KOH(aq)+O2(g)+H2O2(aq)
Adding the coefficient
2 to
KO2 and
KOH balances the number of atoms of potassium and oxygen present on either side of the reaction. The balanced equation thus obtained is,
2KO2(s)+2H2O(l)→2KOH(aq)+O2(g)+H2O2(aq)
Conclusion
The balanced chemical equation is,
2KO2(s)+2H2O(l)→2KOH(aq)+O2(g)+H2O2(aq)
(b)
Expert Solution
Interpretation Introduction
Interpretation: A balanced form of the given chemical equations is to be stated.
Concept introduction: According to the law of conservation of mass, mass can neither be created nor destroyed. The mass of reactants is equal to the mass of products formed during a chemical process.
To determine: A balanced form of the given chemical equation.
Explanation of Solution
According to the law of conservation of mass, mass can neither be created nor destroyed. The mass of reactants is equal to the mass of products formed. Therefore a chemical equation, having lesser number of moles of an element on either side of a reaction, is balanced using appropriate numerical coefficients to satisfy the law of conservation of mass.
The given reaction is,
Fe2O3(s)+HNO3(aq)→Fe(NO3)3(aq)+H2O(l)
Adding the coefficient
2 to
Fe(NO3)3 balances the number of atoms of iron present on either side of the reaction. The equation thus obtained is,
Fe2O3(s)+HNO3(aq)→2Fe(NO3)3(aq)+H2O(l)
Adding the coefficient
6 to
HNO3 and the coefficient
3 to
H2O balances the number of atoms of nitrogen, hydrogen and oxygen present on either side of the reaction. The balanced equation thus obtained is,
Fe2O3(s)+6HNO3(aq)→2Fe(NO3)3(aq)+3H2O(l)
Conclusion
The balanced chemical equation is,
Fe2O3(s)+6HNO3(aq)→2Fe(NO3)3(aq)+3H2O(l)
(c)
Expert Solution
Interpretation Introduction
Interpretation: A balanced form of the given chemical equations is to be stated.
Concept introduction: According to the law of conservation of mass, mass can neither be created nor destroyed. The mass of reactants is equal to the mass of products formed during a chemical process.
To determine: A balanced form of the given chemical equation.
Explanation of Solution
According to the law of conservation of mass, mass can neither be created nor destroyed. The mass of reactants is equal to the mass of products formed. Therefore a chemical equation, having lesser number of moles of an element on either side of a reaction, is balanced using appropriate numerical coefficients to satisfy the law of conservation of mass.
The given reaction is,
NH3(g)+O2(g)→NO(g)+H2O(g)
Adding the coefficient
4 to
NH3 and the coefficient
6 to
H2O balances the number of atoms of hydrogen present on either side of the reaction. The equation thus obtained is,
4NH3(g)+O2(g)→NO(g)+6H2O(g)
Adding the coefficient
5 to
O2 and the coefficient
4 to
NO balances the number of atoms of oxygen and nitrogen present on either side of the reaction. The balanced equation thus obtained is,
4NH3(g)+5O2(g)→4NO(g)+6H2O(g)
Conclusion
The balanced chemical equation is
4NH3(g)+5O2(g)→4NO(g)+6H2O(g).
(d)
Expert Solution
Interpretation Introduction
Interpretation: A balanced form of the given chemical equations is to be stated.
Concept introduction: According to the law of conservation of mass, mass can neither be created nor destroyed. The mass of reactants is equal to the mass of products formed during a chemical process.
To determine: A balanced form of the given chemical equation.
Explanation of Solution
According to the law of conservation of mass, mass can neither be created nor destroyed. The mass of reactants is equal to the mass of products formed. Therefore a chemical equation, having lesser number of moles of an element on either side of a reaction, is balanced using appropriate numerical coefficients to satisfy the law of conservation of mass.
The given reaction is,
PCl5(l)+H2O(l)→H3PO4(aq)+HCl(g)
Adding the coefficient
5 to
HCl balances the number of atoms of chlorine present on either side of the reaction. The equation thus obtained is,
PCl5(l)+H2O(l)→H3PO4(aq)+5HCl(g)
Adding the coefficient
4 to
H2O balances the number of atoms of oxygen and hydrogen present on either side of the reaction. The balanced equation thus obtained is,
PCl5(l)+4H2O(l)→H3PO4(aq)+5HCl(g)
Conclusion
The balanced chemical equation is
PCl5(l)+4H2O(l)→H3PO4(aq)+5HCl(g).
(e)
Expert Solution
Interpretation Introduction
Interpretation: A balanced form of the given chemical equations is to be stated.
Concept introduction: According to the law of conservation of mass, mass can neither be created nor destroyed. The mass of reactants is equal to the mass of products formed during a chemical process.
To determine: A balanced form of the given chemical equation.
Explanation of Solution
According to the law of conservation of mass, mass can neither be created nor destroyed. The mass of reactants is equal to the mass of products formed. Therefore a chemical equation, having lesser number of moles of an element on either side of a reaction, is balanced using appropriate numerical coefficients to satisfy the law of conservation of mass.
The given reaction is,
CaO(s)+C(s)→CaC2(s)+CO2(g)
Adding the coefficient
5 to
C and the coefficient
2 to
CaC2 balances the number of atoms of carbon present on either side of the reaction. The equation thus obtained is,
CaO(s)+5C(s)→2CaC2(s)+CO2(g)
Adding the coefficient
2 to
CaO balances the number of atoms of oxygen and calcium present on either side of the reaction. The balanced equation thus obtained is,
2CaO(s)+5C(s)→2CaC2(s)+CO2(g)
Conclusion
The balanced chemical equation is
2CaO(s)+5C(s)→2CaC2(s)+CO2(g).
(f)
Expert Solution
Interpretation Introduction
Interpretation: A balanced form of the given chemical equations is to be stated.
Concept introduction: According to the law of conservation of mass, mass can neither be created nor destroyed. The mass of reactants is equal to the mass of products formed during a chemical process.
To determine: A balanced form of the given chemical equation.
Explanation of Solution
According to the law of conservation of mass, mass can neither be created nor destroyed. The mass of reactants is equal to the mass of products formed. Therefore a chemical equation, having lesser number of moles of an element on either side of a reaction, is balanced using appropriate numerical coefficients to satisfy the law of conservation of mass.
The given reaction is,
MoS2(s)+O2(s)→MoO3(s)+SO2(g)
Adding the coefficient
2 to
MoS2 and the coefficient
4 to
SO2 balances the number of atoms of sulfur present on either side of the reaction. The equation thus obtained is,
2MoS2(s)+O2(s)→MoO3(s)+4SO2(g)
Adding the coefficient
7 to
O2 and the coefficient
4 to
SO2 balances the number of atoms of oxygen and molybdenum present on either side of the reaction. The balanced equation thus obtained is,
2MoS2(s)+7O2(s)→2MoO3(s)+4SO2(g)
Conclusion
The balanced chemical equation is
2MoS2(s)+7O2(s)→2MoO3(s)+4SO2(g).
(g)
Expert Solution
Interpretation Introduction
Interpretation: A balanced form of the given chemical equations is to be stated.
Concept introduction: According to the law of conservation of mass, mass can neither be created nor destroyed. The mass of reactants is equal to the mass of products formed during a chemical process.
To determine: A balanced form of the given chemical equation.
Explanation of Solution
According to the law of conservation of mass, mass can neither be created nor destroyed. The mass of reactants is equal to the mass of products formed. Therefore a chemical equation, having lesser number of moles of an element on either side of a reaction, is balanced using appropriate numerical coefficients to satisfy the law of conservation of mass.
The given reaction is,
FeCO3(s)+H2CO3(aq)→Fe(HCO3)(aq)
The given reaction is already present in its balanced form.
Conclusion
The balanced chemical equation is
FeCO3(s)+H2CO3(aq)→Fe(HCO3)(aq)
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At pil below about 35
woon (Fe) oxidizes in streams according to the following
Water in a reservoir at 20°C has a pH of 7.7 and contains the following constituents:
Constituent (g) + Conc. (mg/L)
Ca2+
38
HCO3 abiotic oxid 183
HO
Ferrous iron under these conditions and at 20°Cis
Estimate the activities of Ca2+ and HCO3-, using an appropriate equation to compute the
activity coefficients. (atomic weight: Ca 40)
draw the diagram please
Show work with explanation. Don't give Ai generated solution
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