EBK CHEMISTRY
EBK CHEMISTRY
4th Edition
ISBN: 8220102797864
Author: Burdge
Publisher: YUZU
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Chapter 23, Problem 62AP

A 0.450-g sample of steel contains manganese as an impurity. The sample is dissolved in acidic solution and the manganese is oxidized to the permanganate ion MnO 4 . The MnO 4 ion is reduced to Mn 2 - by reacting with 50.0 mL of 0.0800 M  FeSO 4 solution. The excess Fe 2- ions are then oxidized to Fe 3- by 22.4 mL of 0.0100 M K 2 Cr 2 O 7 . Calculate the percent by mass of manganese in the sample.

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Interpretation Introduction

Interpretation:

The mass by percent of manganese in the sample is to be calculated with given mass, volume, and concentration.

Concept introduction:

The reactions in which one reactant gets oxidized while the other gets reduced are called oxidation-reduction reactions or redox reactions.

In an acidic solution, permanganate (VII) is reduced to the colorless +2 oxidation state of the manganese (II) ion.

The original amount of iron (II) is calculated as:

n=molofFe2+1000mLsoln

The excess iron (II) is calculated as:

m=V×molesofCr2O72-1000mlsolution×molofFe2+1molofCr2O72-

The amount of iron(II) consumed is calculated as:

mFe2+=originalamount-excessamount

The mass of manganese is calculated as:

mMn=mFe2+×molMnO4-molFe2+×1molMn1molMnO4-×massofMn1molMn

The mass percent of Mn is calculated as:

masspercent=(massofMngivenmass)×100

Answer to Problem 62AP

Solution: 6.49%

Explanation of Solution

Given information: A 0.450 g

sample of steel contains manganese as an impurity. The permanganate ion is reduced to Mn2+ by reacting with 50 ml of 0.0800 M. The excess Fe2+ ions are then oxidized to Fe3+

by 22.4 mL

of 0.0800 M K2Cr2O7 .

The balanced equation for the permanganate iron (II) reaction is represented below.

5Fe2+(aq) + MnO4(aq) + 8H+(aq) 5Fe3+(aq) + Mn2+(aq) + 4H2O(l)

Thus, one mole of permanganate is stoichiometrically equivalent to five moles of iron(II).

The original amount of iron(II) is calculated as follows.

n=molofFe2+1000mLsoln

nFe2+= (50.0mL×0.0800molFe2+1000mLsoln)=4.00×103molFe2+

The excess amount of iron (II) is determined by using the balanced equation represented below.

Cr2O2-7(aq) + 14H+(aq) + 6Fe2+(aq) 2Cr3+(aq) + 7H2O(l) + 6Fe3+(aq)

Thus, one mole of dichromate is equivalent to six moles of iron (II).

The excess iron (II) is calculated as follows:

m=V×molesofCr2O72-1000mlsolution×molofFe2+1molofCr2O72-

m= 22.4mL×0.0100molCr2O72-1000mLsoln×6molFe2+1molCr2O72-=1.34×103molFe2+

The amount of iron(II) consumed is calculated as follows:

mFe2+=originalamount-excessamount

mFe2+= (4.00×103mol)(1.34×103mol) = 2.66×103mol

The mass of manganese is calculated as follows:

mMn=mFe2+×molMnO4-molFe2+×1molMn1molMnO4-×massofMn1molMn

mMn= (2.66×103molFe2+)×(1molMnO45molFe2+)×(1molMn1molMnO4)×(54.94g Mn1molMn)=0.0292gMn

Finally, the mass by mass percent of Mn is calculated as follows:

masspercent=(massofMngivenmass)×100

Mn%=(0.0292g0.450g)×100%=6.49%

Conclusion

The mass by percent of manganese is calculated to be 6.49%.

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Chapter 23 Solutions

EBK CHEMISTRY

Ch. 23 - Prob. 11QPCh. 23 - Prob. 12QPCh. 23 - Prob. 13QPCh. 23 - Prob. 14QPCh. 23 - Prob. 15QPCh. 23 - Prob. 16QPCh. 23 - Prob. 17QPCh. 23 - Prob. 18QPCh. 23 - Prob. 19QPCh. 23 - Although iron is only about two-thirds as abundant...Ch. 23 - Prob. 21QPCh. 23 - Prob. 22QPCh. 23 - Prob. 23QPCh. 23 - Prob. 24QPCh. 23 - Prob. 25QPCh. 23 - Prob. 26QPCh. 23 - Prob. 27QPCh. 23 - Prob. 28QPCh. 23 - Prob. 29QPCh. 23 - Prob. 30QPCh. 23 - Prob. 31QPCh. 23 - Prob. 32QPCh. 23 - Prob. 33QPCh. 23 - Prob. 34QPCh. 23 - Prob. 35QPCh. 23 - Prob. 36QPCh. 23 - Prob. 37QPCh. 23 - Prob. 38QPCh. 23 - Prob. 39QPCh. 23 - Describe two ways of preparing magnesium chloride.Ch. 23 - Prob. 41QPCh. 23 - Prob. 42QPCh. 23 - Prob. 43QPCh. 23 - Prob. 44QPCh. 23 - Prob. 45QPCh. 23 - Prob. 46QPCh. 23 - Prob. 47QPCh. 23 - With the Hall process, how many hours will it take...Ch. 23 - Prob. 49QPCh. 23 - Prob. 50QPCh. 23 - Prob. 51QPCh. 23 - Prob. 52QPCh. 23 - Prob. 53QPCh. 23 - Prob. 54QPCh. 23 - Prob. 55QPCh. 23 - Prob. 56QPCh. 23 - Prob. 57QPCh. 23 - Prob. 58APCh. 23 - Prob. 59APCh. 23 - Prob. 60APCh. 23 - Prob. 61APCh. 23 - 23.62 A 0.450-g sample of steel contains manganese...Ch. 23 - Given that Δ G ( Fe 2 O 3 ) f o = − 741.0 kJ/mol...Ch. 23 - Prob. 64APCh. 23 - Prob. 65APCh. 23 - Prob. 66APCh. 23 - Prob. 67APCh. 23 - Write balanced equations for the following...Ch. 23 - Prob. 69APCh. 23 - Prob. 70APCh. 23 - Prob. 71APCh. 23 - Prob. 72APCh. 23 - Prob. 73APCh. 23 - Prob. 74APCh. 23 - Prob. 75APCh. 23 - Prob. 76APCh. 23 - Prob. 77APCh. 23 - Prob. 78APCh. 23 - Prob. 79APCh. 23 - 23.80 The electrical conductance of copper metal...Ch. 23 - Prob. 81APCh. 23 - Prob. 82APCh. 23 - Prob. 1SEPPCh. 23 - Prob. 2SEPPCh. 23 - Prob. 3SEPPCh. 23 - Prob. 4SEPP
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