Input interpretation
HNO_3 nitric acid + FeI_2 ferrous iodide ⟶ H_2O water + I_2 iodine + NO nitric oxide + Fe(NO_3)_3 ferric nitrate
Balanced equation
Balance the chemical equation algebraically: HNO_3 + FeI_2 ⟶ H_2O + I_2 + NO + Fe(NO_3)_3 Add stoichiometric coefficients, c_i, to the reactants and products: c_1 HNO_3 + c_2 FeI_2 ⟶ c_3 H_2O + c_4 I_2 + c_5 NO + c_6 Fe(NO_3)_3 Set the number of atoms in the reactants equal to the number of atoms in the products for H, N, O, Fe and I: H: | c_1 = 2 c_3 N: | c_1 = c_5 + 3 c_6 O: | 3 c_1 = c_3 + c_5 + 9 c_6 Fe: | c_2 = c_6 I: | 2 c_2 = 2 c_4 Since the coefficients are relative quantities and underdetermined, choose a coefficient to set arbitrarily. To keep the coefficients small, the arbitrary value is ordinarily one. For instance, set c_2 = 1 and solve the system of equations for the remaining coefficients: c_1 = 4 c_2 = 1 c_3 = 2 c_4 = 1 c_5 = 1 c_6 = 1 Substitute the coefficients into the chemical reaction to obtain the balanced equation: Answer: | | 4 HNO_3 + FeI_2 ⟶ 2 H_2O + I_2 + NO + Fe(NO_3)_3
Structures
+ ⟶ + + +
Names
nitric acid + ferrous iodide ⟶ water + iodine + nitric oxide + ferric nitrate
Equilibrium constant
![Construct the equilibrium constant, K, expression for: HNO_3 + FeI_2 ⟶ H_2O + I_2 + NO + Fe(NO_3)_3 Plan: • Balance the chemical equation. • Determine the stoichiometric numbers. • Assemble the activity expression for each chemical species. • Use the activity expressions to build the equilibrium constant expression. Write the balanced chemical equation: 4 HNO_3 + FeI_2 ⟶ 2 H_2O + I_2 + NO + Fe(NO_3)_3 Assign stoichiometric numbers, ν_i, using the stoichiometric coefficients, c_i, from the balanced chemical equation in the following manner: ν_i = -c_i for reactants and ν_i = c_i for products: chemical species | c_i | ν_i HNO_3 | 4 | -4 FeI_2 | 1 | -1 H_2O | 2 | 2 I_2 | 1 | 1 NO | 1 | 1 Fe(NO_3)_3 | 1 | 1 Assemble the activity expressions accounting for the state of matter and ν_i: chemical species | c_i | ν_i | activity expression HNO_3 | 4 | -4 | ([HNO3])^(-4) FeI_2 | 1 | -1 | ([FeI2])^(-1) H_2O | 2 | 2 | ([H2O])^2 I_2 | 1 | 1 | [I2] NO | 1 | 1 | [NO] Fe(NO_3)_3 | 1 | 1 | [Fe(NO3)3] The equilibrium constant symbol in the concentration basis is: K_c Mulitply the activity expressions to arrive at the K_c expression: Answer: | | K_c = ([HNO3])^(-4) ([FeI2])^(-1) ([H2O])^2 [I2] [NO] [Fe(NO3)3] = (([H2O])^2 [I2] [NO] [Fe(NO3)3])/(([HNO3])^4 [FeI2])](../image_source/56f16064bdf3673cf516d9c7ca9ecd45.png)
Construct the equilibrium constant, K, expression for: HNO_3 + FeI_2 ⟶ H_2O + I_2 + NO + Fe(NO_3)_3 Plan: • Balance the chemical equation. • Determine the stoichiometric numbers. • Assemble the activity expression for each chemical species. • Use the activity expressions to build the equilibrium constant expression. Write the balanced chemical equation: 4 HNO_3 + FeI_2 ⟶ 2 H_2O + I_2 + NO + Fe(NO_3)_3 Assign stoichiometric numbers, ν_i, using the stoichiometric coefficients, c_i, from the balanced chemical equation in the following manner: ν_i = -c_i for reactants and ν_i = c_i for products: chemical species | c_i | ν_i HNO_3 | 4 | -4 FeI_2 | 1 | -1 H_2O | 2 | 2 I_2 | 1 | 1 NO | 1 | 1 Fe(NO_3)_3 | 1 | 1 Assemble the activity expressions accounting for the state of matter and ν_i: chemical species | c_i | ν_i | activity expression HNO_3 | 4 | -4 | ([HNO3])^(-4) FeI_2 | 1 | -1 | ([FeI2])^(-1) H_2O | 2 | 2 | ([H2O])^2 I_2 | 1 | 1 | [I2] NO | 1 | 1 | [NO] Fe(NO_3)_3 | 1 | 1 | [Fe(NO3)3] The equilibrium constant symbol in the concentration basis is: K_c Mulitply the activity expressions to arrive at the K_c expression: Answer: | | K_c = ([HNO3])^(-4) ([FeI2])^(-1) ([H2O])^2 [I2] [NO] [Fe(NO3)3] = (([H2O])^2 [I2] [NO] [Fe(NO3)3])/(([HNO3])^4 [FeI2])
Rate of reaction
![Construct the rate of reaction expression for: HNO_3 + FeI_2 ⟶ H_2O + I_2 + NO + Fe(NO_3)_3 Plan: • Balance the chemical equation. • Determine the stoichiometric numbers. • Assemble the rate term for each chemical species. • Write the rate of reaction expression. Write the balanced chemical equation: 4 HNO_3 + FeI_2 ⟶ 2 H_2O + I_2 + NO + Fe(NO_3)_3 Assign stoichiometric numbers, ν_i, using the stoichiometric coefficients, c_i, from the balanced chemical equation in the following manner: ν_i = -c_i for reactants and ν_i = c_i for products: chemical species | c_i | ν_i HNO_3 | 4 | -4 FeI_2 | 1 | -1 H_2O | 2 | 2 I_2 | 1 | 1 NO | 1 | 1 Fe(NO_3)_3 | 1 | 1 The rate term for each chemical species, B_i, is 1/ν_i(Δ[B_i])/(Δt) where [B_i] is the amount concentration and t is time: chemical species | c_i | ν_i | rate term HNO_3 | 4 | -4 | -1/4 (Δ[HNO3])/(Δt) FeI_2 | 1 | -1 | -(Δ[FeI2])/(Δt) H_2O | 2 | 2 | 1/2 (Δ[H2O])/(Δt) I_2 | 1 | 1 | (Δ[I2])/(Δt) NO | 1 | 1 | (Δ[NO])/(Δt) Fe(NO_3)_3 | 1 | 1 | (Δ[Fe(NO3)3])/(Δt) (for infinitesimal rate of change, replace Δ with d) Set the rate terms equal to each other to arrive at the rate expression: Answer: | | rate = -1/4 (Δ[HNO3])/(Δt) = -(Δ[FeI2])/(Δt) = 1/2 (Δ[H2O])/(Δt) = (Δ[I2])/(Δt) = (Δ[NO])/(Δt) = (Δ[Fe(NO3)3])/(Δt) (assuming constant volume and no accumulation of intermediates or side products)](../image_source/1b9a2d955e8c43f0c6370218e7f59382.png)
Construct the rate of reaction expression for: HNO_3 + FeI_2 ⟶ H_2O + I_2 + NO + Fe(NO_3)_3 Plan: • Balance the chemical equation. • Determine the stoichiometric numbers. • Assemble the rate term for each chemical species. • Write the rate of reaction expression. Write the balanced chemical equation: 4 HNO_3 + FeI_2 ⟶ 2 H_2O + I_2 + NO + Fe(NO_3)_3 Assign stoichiometric numbers, ν_i, using the stoichiometric coefficients, c_i, from the balanced chemical equation in the following manner: ν_i = -c_i for reactants and ν_i = c_i for products: chemical species | c_i | ν_i HNO_3 | 4 | -4 FeI_2 | 1 | -1 H_2O | 2 | 2 I_2 | 1 | 1 NO | 1 | 1 Fe(NO_3)_3 | 1 | 1 The rate term for each chemical species, B_i, is 1/ν_i(Δ[B_i])/(Δt) where [B_i] is the amount concentration and t is time: chemical species | c_i | ν_i | rate term HNO_3 | 4 | -4 | -1/4 (Δ[HNO3])/(Δt) FeI_2 | 1 | -1 | -(Δ[FeI2])/(Δt) H_2O | 2 | 2 | 1/2 (Δ[H2O])/(Δt) I_2 | 1 | 1 | (Δ[I2])/(Δt) NO | 1 | 1 | (Δ[NO])/(Δt) Fe(NO_3)_3 | 1 | 1 | (Δ[Fe(NO3)3])/(Δt) (for infinitesimal rate of change, replace Δ with d) Set the rate terms equal to each other to arrive at the rate expression: Answer: | | rate = -1/4 (Δ[HNO3])/(Δt) = -(Δ[FeI2])/(Δt) = 1/2 (Δ[H2O])/(Δt) = (Δ[I2])/(Δt) = (Δ[NO])/(Δt) = (Δ[Fe(NO3)3])/(Δt) (assuming constant volume and no accumulation of intermediates or side products)
Chemical names and formulas
| nitric acid | ferrous iodide | water | iodine | nitric oxide | ferric nitrate formula | HNO_3 | FeI_2 | H_2O | I_2 | NO | Fe(NO_3)_3 Hill formula | HNO_3 | FeI_2 | H_2O | I_2 | NO | FeN_3O_9 name | nitric acid | ferrous iodide | water | iodine | nitric oxide | ferric nitrate IUPAC name | nitric acid | diiodoiron | water | molecular iodine | nitric oxide | iron(+3) cation trinitrate