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2NaI + 2KMnO4 + H2O → 2NaOH + KIO3 + 2MnO2 + KI

The reaction of sodium iodide, potassium permanganate, and water yields sodium hydroxide, potassium iodate, manganese(IV) oxide, and potassium iodide (Other reactions are here). This reaction is an oxidation-reduction reaction and is classified as follows:

Table of contents
  1. 1Reaction data
  2. 2Thermodynamic changes
  3. 3References
  4. 4Related reactions
  5. 5Related categories

Reaction data

Chemical equation

General equation

Reaction of oxidizable species and oxidizing species under neutral condition
Oxidizable speciesReducing agent + Oxidizing speciesOxidizing agent + H2ONon-redox agent
ProductOxidation product + ProductReduction product

Oxidation state of each atom

Reaction of sodium iodide and potassium permanganate under neutral condition

Reactants

Chemical formulaNameCoefficientTypeType in general
equation
NaISodium iodide2
Reducing
Oxidizable
KMnO4Potassium permanganate2
Oxidizing
Oxidizing
H2OWater1
Water

Products

Chemical formulaNameCoefficientTypeType in general
equation
NaOHSodium hydroxide2
KIO3Potassium iodate1
Oxidized
MnO2Manganese(IV) oxide2
Reduced
KIPotassium iodide1

Thermodynamic changes

Changes in standard condition (1)

Reaction of sodium iodide and potassium permanganate under neutral condition
ΔrG−148.1 kJ/mol
K8.83 × 1025
pK−25.95
2NaICrystalline solid + 2KMnO4Crystalline solid + H2OLiquid
2NaOHCrystalline solid + KIO3Crystalline solid + 2MnO2Crystalline solid + KICrystalline solid
Standard enthalpy
of reaction
ΔrH°
kJ · mol−1
Standard
Gibbs energy
of reaction
ΔrG°
kJ · mol−1
Standard entropy
of reaction
ΔrS°
J · K−1 · mol−1
Standard heat
capacity of reaction
at constant pressure
ΔrCp°
J · K−1 · mol−1
per 1 mol of
Equation
−184.8−148.1−117.60−27.84
per 1 mol of
−92.40−74.05−58.800−13.92
−92.40−74.05−58.800−13.92
per 1 mol of
−184.8−148.1−117.60−27.84
per 1 mol of
−92.40−74.05−58.800−13.92
per 1 mol of
−184.8−148.1−117.60−27.84
−92.40−74.05−58.800−13.92
per 1 mol of
−184.8−148.1−117.60−27.84

Changes in standard condition (2)

Reaction of sodium iodide and potassium permanganate under neutral condition
2NaICrystalline solid + 2KMnO4Crystalline solid + H2OLiquid
2NaOHCrystalline solid + KIO3Crystalline solid + 2MnO2Amorphous solidprecipitated + KICrystalline solid
Standard enthalpy
of reaction
ΔrH°
kJ · mol−1
Standard
Gibbs energy
of reaction
ΔrG°
kJ · mol−1
Standard entropy
of reaction
ΔrS°
J · K−1 · mol−1
Standard heat
capacity of reaction
at constant pressure
ΔrCp°
J · K−1 · mol−1
per 1 mol of
Equation
−149.7
per 1 mol of
−74.85
−74.85
per 1 mol of
−149.7
per 1 mol of
−74.85
per 1 mol of
−149.7
−74.85
per 1 mol of
−149.7

Changes in aqueous solution

Reaction of sodium iodide and potassium permanganate under neutral condition
ΔrG−189.6 kJ/mol
K1.65 × 1033
pK−33.22
2NaIIonized aqueous solution + 2KMnO4Ionized aqueous solution + H2OLiquid
2NaOHIonized aqueous solution + KIO3Ionized aqueous solution + 2MnO2Crystalline solid + KIIonized aqueous solution
Standard enthalpy
of reaction
ΔrH°
kJ · mol−1
Standard
Gibbs energy
of reaction
ΔrG°
kJ · mol−1
Standard entropy
of reaction
ΔrS°
J · K−1 · mol−1
Standard heat
capacity of reaction
at constant pressure
ΔrCp°
J · K−1 · mol−1
per 1 mol of
Equation
−297.4−189.6−360.9
per 1 mol of
−148.7−94.80−180.4
−148.7−94.80−180.4
per 1 mol of
−297.4−189.6−360.9
per 1 mol of
−148.7−94.80−180.4
per 1 mol of
−297.4−189.6−360.9
−148.7−94.80−180.4
per 1 mol of
−297.4−189.6−360.9

Thermodynamic data of reactants

Chemical formulaStandard enthalpy
of formation
ΔfH°
kJ · mol−1
Standard Gibbs
energy of
formation
ΔfG°
kJ · mol−1
Standard
molar entropy
S°
J · K−1 · mol−1
Standard molar
heat capacity at
constant pressure
Cp°
J · K−1 · mol−1
NaI (cr)-287.78[1]-286.06[1]98.53[1]52.09[1]
NaI (g)-79.5[1]-121.0[1]248.978[1]36.65[1]
NaI (ai)-295.31[1]-313.47[1]170.3[1]-95.8[1]
NaI (cr)
1 hydrate
-883.096[1]-771.10[1]196.2[1]
KMnO4 (cr)-837.2[1]-737.6[1]171.71[1]117.57[1]
KMnO4 (ai)-793.8[1]-730.5[1]293.7[1]-60.2[1]
H2O (cr)
H2O (l)-285.830[1]-237.129[1]69.91[1]75.291[1]
H2O (g)-241.818[1]-228.572[1]188.825[1]33.577[1]
* (cr):Crystalline solid, (g):Gas, (ai):Ionized aqueous solution, (l):Liquid

Thermodynamic data of products

Chemical formulaStandard enthalpy
of formation
ΔfH°
kJ · mol−1
Standard Gibbs
energy of
formation
ΔfG°
kJ · mol−1
Standard
molar entropy
S°
J · K−1 · mol−1
Standard molar
heat capacity at
constant pressure
Cp°
J · K−1 · mol−1
NaOH (cr)-425.609[1]-379.494[1]64.455[1]59.54[1]
NaOH (g)-207.1[1]-210.0[1]228.43[1]48.37[1]
NaOH (ai)-470.114[1]-419.150[1]48.1[1]-102.1[1]
NaOH (cr)
1 hydrate
-734.543[1]-629.338[1]99.50[1]90.17[1]
NaOH (l)
2 hydrate
-1019.076[1]-873.091[1]195.979[1]239.41[1]
NaOH (l)
3.5 hydrate
-1459.798[1]-1236.356[1]286.089[1]354.43[1]
NaOH (l)
4 hydrate
-1605.15[1]-1356.64[1]318.70[1]
NaOH (l)
5 hydrate
-1894.31[1]-1596.34[1]386.06[1]
NaOH (l)
7 hydrate
-2469.02[1]-2073.80[1]526.31[1]
KIO3 (cr)-501.37[1]-418.35[1]151.46[1]106.48[1]
KIO3 (ai)-473.6[1]-411.2[1]220.9[1]
MnO2 (cr)-520.03[1]-465.14[1]53.05[1]54.14[1]
MnO2 (am)
precipitated
-502.5[1]
KI (cr)-327.900[1]-324.892[1]106.32[1]52.93[1]
KI (g)-125.5[1]-166.1[1]258.3[1]37.11[1]
KI (ai)-307.57[1]-334.85[1]213.8[1]-120.5[1]
* (cr):Crystalline solid, (g):Gas, (ai):Ionized aqueous solution, (l):Liquid, (am):Amorphous solid

References

List of references

  1. 1
    Janiel J. Reed (1989)
    The NBS Tables of Chemical Thermodynamic Properties: Selected Values for Inorganic and C1 and C2 Organic Substances in SI Units
    National Institute of Standards and Technology (NIST)