Chemistry with Access Code, Hybrid Edition
Chemistry with Access Code, Hybrid Edition
9th Edition
ISBN: 9781285188492
Author: Steven S. Zumdahl
Publisher: CENGAGE L
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Chapter 21, Problem 99IP

Ammonia and potassium iodide solutions are added to an aqueous solution of Cr(NO3)3. A solid is isolated (compound A), and the following data are collected:

i. When 0.105 g of compound A was strongly heated in excess 0 2, 0.0203 g CrO3 was formed.

ii. In a second experiment it took 32.93 mL of 0.100 M HCI to titrate completely the NH3 present in 0.341 g compound A.

iii. Compound A was found to contain 73.53% iodine by mass.

iv. The freezing point of water was lowered by 0.64°C when 0.601 g compound A was dissolved in 10.00 g H2O (Kf =1.86°C·kg/mol).

What is the formula of the compound? What is the structure of the complex ion present? (Hints: Cr3+ is expected to be sixcoordinate, with NH3 and possibly I as ligands. The I ions will be the counterions if needed.)

Expert Solution & Answer
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Interpretation Introduction

Interpretation: The formation of compound A by the addition of ammonia and potassium iodide solutions to an aqueous solution of Cr(NO3)3 is given. The formula of the compound and the structure of complex ion present on the basis of given information is to be stated.

Concept introduction: Electronic configuration is used to describe the distribution of the electrons in the orbitals of an atom. Structure of an atom can be defined by its electronic configuration. It can also be used to denote an atom which is ionized to a cation or anion formed by the loss or gain of electrons in their respective orbitals.

To determine: The formula of the compound A and the structure of complex ion present on the basis of given information.

Answer to Problem 99IP

Answer

The formula of the compound is [Cr(NH3)5I]I2 and the complex ion is octahedral [Cr(NH3)5I]2+ .

Explanation of Solution

Explanation

The mass percent of Cr is 10.1%Cr_ .

The molar mass of Cr is 51.99g .

The molar mass of CrO3 is 99.99g .

In 99.99g CrO3 , the mass of Cr present is 51.99g .

In 0.0203g CrO3 , the mass of Cr present =51.99×0.020399.99=0.0106gCr

Mass percent of Cr is calculated by the formula,

Masspercent=MassofCrMassofcompoundA×100%

The mass of compound A is 0.105g .

The mass of Cr is 0.0106gCr .

Substitute the value of mass of compound A and MassofCr in the above formula.

Masspercent=0.0106g0.105g×100%=10.1%Cr_

The mass percent of NH3 is 16.5%NH3_ .

One mL HCl equals to 0.100HCl .

Therefore, 32.93mLHCl is equal to 32.93×0.100mLHCl

Molar mass of NH3 is 17.04g .

One mL of HCl titrate 17.04mgNH3 .

Therefore, the mass of NH3 titrated by 32.93×0.100mLHCl is calculated as,

17.04×32.93×0.100=56.1gNH3

Mass percent of NH3 is calculated by the formula,

Masspercent=MassofNH3MassofcompoundA×100%

The mass of compound A is this case is 0.341g .

The mass of NH3 is 56.1g .

Substitute the value of mass of compound A and mass of NH3 in the above formula.

Masspercent=56.1g0.341g×100%=16.5%NH3_

Except chromium, ammonia and iodine, no other element is needed in compound A.

Given

The mass percent of iodine is 73.53% .

To check whether any other element is needed or not, mass percent of Cr , NH3 and iodine are added shown in the formula given below.

MasspercentofCr+MasspercentofNH3+MasspercentofI

Substitute the values of mass percent in the above formula.

74.53%+16.5%+10.1%=100%

Therefore, no other element is required in the compound A.

The number of moles of Cr , NH3 and iodine is calculated below.

The compound A is assumed to have mass 100g .

The number of moles is calculated by the formula,

Numberofmoles=GivenmassMolarmass

One mole of Cr have mass 51.99g .

Therefore, number of moles of Cr having mass 10.1g =10.152=0.194mol

One mole of NH3 have mass 17.03g .

Therefore, number of moles of NH3 having mass 16.5g =16.517.03=0.969mol

One mole of iodine have mass 126.9g .

Therefore, number of moles of iodine having mass 73.53g =73.53126.9=0.5794mol

The formula of the compound is [Cr(NH3)5I]I2 and the complex ion is octahedral [Cr(NH3)5I]2+ .

Each molar amount is divided by lowest molar amount for calculating the empirical formula.

The lowest molar amount is 0.194mol .

The number of Cr atoms is calculated as,

NumberofCratoms=MolesofCrLowestmolaramount

Number of moles of Cr is 0.194 . Substitute the value of moles of Cr and lowest molar amount in the above formula.

NumberofCratoms=MolesofCrLowestmolaramount0.1940.194=1

The number of NH3 ligands is calculated by the formula,

NumberofNH3ligands=MolesofNH3Lowestmolaramount

Number of moles of NH3 is 0.969 . Substitute the value of moles of NH3 and lowest molar amount in the above formula.

NumberofNH3ligands=MolesofNH3Lowestmolaramount0.9690.194=4.995

The number of iodine ligands is calculated by the formula,

Numberofiodineligands=MolesofiodineLowestmolaramount

Number of moles of iodine is 0.5794 . Substitute the value of moles of iodine and lowest molar amount in the above formula.

Numberofiodineligands=MolesofiodineLowestmolaramount0.57940.194=2.993

This indicates that the empirical formula is Cr(NH3)5I3 . This means that Cr3+ is expected to be six coordinated with NH3 and I as ligands. Therefore the compound A is composed of [Cr(NH3)5I]2+ complex ion and iodine ions acts as counter ions. Therefore, the formula of compound is, [Cr(NH3)5I]I2 .

Conclusion

Conclusion

The formula of the compound is [Cr(NH3)5I]I2 and the complex ion is octahedral [Cr(NH3)5I]2+ .

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Chapter 21 Solutions

Chemistry with Access Code, Hybrid Edition

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