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 16, Problem 70E

A solution is prepared by mixing 100.0 mL of 1.0 × 10−4 M Be(NO3)2 and 100.0 mL of 8.0 M NaF.

Be 2+ ( a q ) + F ( a q ) B e F + ( a q ) K 1 = 7.9 × 10 4 BeF + ( a q ) + F ( a q ) B e F 2 ( a q ) K 2 = 5.8 × 10 3 BeF 2 ( a q ) + F ( a q ) B e F 3 ( a q ) K 3 = 6.1 × 10 2 BeF 3 ( a q ) + F ( a q ) B e F 4 2 ( a q ) K 4 = 2.7 × 10 1

Calculate the equilibrium concentrations of F, Be2+, BeF+, BeF2, BeF3, and BeF42− in this solution.

Expert Solution & Answer
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Interpretation Introduction

Interpretation: The value of different equilibrium constant for the reaction involving the formation of BeF42 in a stepwise manner is given. The equilibrium concentration of BeF3 , BeF42 , BeF42 , BeF2 , BeF+ , Be2+ is to be calculated.

Concept introduction: The equilibrium that is present between the species that is unionized and its ions is called ionic equilibrium.

Answer to Problem 70E

The equilibrium concentration of BeF42 is 5.0×10-5_ and equilibrium concentration of F is 4.0M_ .

The equilibrium concentration of BeF3 is 4.6×10-7M_ .

The equilibrium concentration of BeF2 is. 1.9×10-10M_ .

The equilibrium concentration of BeF+ is. 8.2×10-15M_ .

The equilibrium concentration of Be2+ is. 2.6×10-10M_ .

Explanation of Solution

Explanation

To determine: The equilibrium concentration of BeF3 , BeF42 , BeF42 , BeF2 , BeF+ , Be2+ in the given solution.

Explanation

The equilibrium concentration of BeF42 is 5.0×105 and equilibrium concentration of F is 4.0M .

Given

The concentration of Be(NO3)2 is 1.0×104M .

The concentration of NaF is 8.0M .

The volume of Be(NO3)2 is 100.0mL .

The volume of NaF is 100.0mL .

The value of K1 is 7.9×104 .

The value of K2 is 5.8×103 .

The value of K3 is 6.1×102 .

The value of K4 is 2.7×101 .

The concentration of any species in the solution before any reaction takes place is given as,

MiVi=MfVf

Where,

  • Mi is the initial molarity.
  • Mf is the final molarity.
  • Vi is the initial volume of the solution.
  • Vf is the volume of solution after mixing.

Substitute the value of Mi , Vi and Vf of Be2+ in the above equation as,

MiVi=MfVf1.0×104M×100mL=Mf×200mLMf=5.0×105M

Similarly substitute the value of Mi , Vi and Vf of F in the above equation as,

MiVi=MfVf8.0M×100mL=Mf×200mLMf=4.00M

As it is seen from the given values of equilibrium constants that the reaction almost goes towards the completion. The final equation is therefore given as,

Be2++4FBeF42Before reaction(M) 5.0×1054.000Change (M)  5.0×1055.0×105+5.0×105After reaction (M)04.004(5.0×105)5.0×105

This gives the equilibrium concentration of BeF42 as 5.0×10-5_ and equilibrium concentration of F as 4.0M_ .

The equilibrium concentration of [BeF3] is 4.6×10-7M_ .

The equilibrium constant for the reaction involving the formation of BeF42 is given as,

K4=[BeF42][BeF3][F]

Substitute the values of K4 , [BeF42] and [F] in the above equation as,

K4=[BeF42][BeF3][F]2.7×101=5.0×105M[BeF3](4.004(5.0×105))M[BeF3]=5.0×105M2.7×101×(4.004(5.0×105))M=4.6×10-7M_

This gives the concentration of [BeF3] .

The equilibrium concentration of [BeF2] is. 1.9×10-10M_ .

The equilibrium constant for the reaction involving the formation of BeF3 is given as,

K3=[BeF3][BeF2][F]

Substitute the values of K3 , [BeF3] and [F] in the above equation as,

K3=[BeF3][BeF2][F]6.1×102=4.6×107M[BeF2](4.004(5.0×105))M[BeF2]=4.6×107M6.1×102×(4.004(5.0×105))M=1.9×10-10M_

This gives the concentration of [BeF2] .

The equilibrium concentration of [BeF+] is. 8.2×10-15M_ .

The equilibrium constant for the reaction involving the formation of BeF2 is given as,

K2=[BeF2][BeF+][F]

Substitute the values of K2 , [BeF2] and [F] in the above equation as,

K2=[BeF2][BeF+][F]5.8×103=1.9×1010M[BeF+](4.004(5.0×105))M[BeF+]=1.9×1010M5.8×103×(4.004(5.0×105))M=8.2×10-15M_

This gives the concentration of BeF+

Explanation

The equilibrium concentration of [Be2+] is. 2.6×10-10M_ .

The equilibrium constant for the reaction involving the formation of BeF+ is given as,

K1=[BeF+][Be2+][F]

Substitute the values of K1 , [BeF+] and [F] in the above equation as,

K1=[BeF+][Be2+][F]7.9×104=8.2×1015M[Be2+](4.004(5.0×105))M[Be2+]=8.2×1015M7.9×104×(4.004(5.0×105))M=2.6×10-10M_

This gives the concentration of Be2+

Conclusion

The value of equilibrium constant determines the amount of product formed and the species that are present in the solution at equilibrium.

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Chapter 16 Solutions

Chemistry with Access Code, Hybrid Edition

Ch. 16 - Which of the following will affect the total...Ch. 16 - Prob. 2ALQCh. 16 - You are browsing through the Handbook of...Ch. 16 - A friend tells you: The constant Ksp of a salt is...Ch. 16 - Explain the following phenomenon: You have a test...Ch. 16 - What happens to the Ksp value of a solid as the...Ch. 16 - Which is more likely to dissolve in an acidic...Ch. 16 - For which of the following is the Ksp value of the...Ch. 16 - Ag2S(s) has a larger molar solubility than CuS...Ch. 16 - Solubility is an equilibrium position, whereas Ksp...Ch. 16 - Prob. 11QCh. 16 - Prob. 12QCh. 16 - The common ion effect for ionic solids (salts) is...Ch. 16 - Sulfide precipitates are generally grouped as...Ch. 16 - List some ways one can increase the solubility of...Ch. 16 - The stepwise formation constants for a complex ion...Ch. 16 - Silver chloride dissolves readily in 2 M NH3 but...Ch. 16 - If a solution contains either Pb2+(aq) or Ag+(aq),...Ch. 16 - Write balanced equations for the dissolution...Ch. 16 - Write balanced equations for the dissolution...Ch. 16 - Prob. 21ECh. 16 - Use the following data to calculate the Ksp value...Ch. 16 - Approximately 0.14 g nickel(II) hydroxide,...Ch. 16 - The solubility of the ionic compound M2X3, having...Ch. 16 - The concentration of Pb2+ in a solution saturated...Ch. 16 - The concentration of Ag+ in a solution saturated...Ch. 16 - Calculate the solubility of each of the following...Ch. 16 - Calculate the solubility of each of the following...Ch. 16 - Cream of tartar, a common ingredient in cooking,...Ch. 16 - Barium sulfate is a contrast agent for X-ray scans...Ch. 16 - Calculate the molar solubility of Mg (OH)2, Ksp =...Ch. 16 - Prob. 32ECh. 16 - Calculate the molar solubility of Al(OH)3, Ksp = 2...Ch. 16 - Calculate the molar solubility of Co(OH)3, Ksp =...Ch. 16 - For each of the following pairs of solids,...Ch. 16 - For each of the following pairs of solids,...Ch. 16 - Calculate the solubility (in moles per liter) of...Ch. 16 - Calculate the solubility of Co(OH)2(s) (Ksp = 2.5 ...Ch. 16 - The Ksp for silver sulfate (Ag2SO4) is 1.2 105....Ch. 16 - The Ksp for lead iodide (PbI2) is 1.4 108....Ch. 16 - Calculate the solubility of solid Ca3(PO4)2 (Ksp =...Ch. 16 - Calculate the solubility of solid Pb3(P04)2 (Ksp =...Ch. 16 - Prob. 43ECh. 16 - The solubility of Pb(IO3)(s) in a 0.10-M KIO3...Ch. 16 - Which of the substances in Exercises 27 and 28...Ch. 16 - For which salt in each of the following groups...Ch. 16 - What mass of ZnS (Ksp = 2.5 1022) will dissolve...Ch. 16 - The concentration of Mg2+ in seawater is 0.052 M....Ch. 16 - Will a precipitate form when 100.0 mL of 4.0 104...Ch. 16 - A solution contains 1.0 105 M Ag+ and 2.0 106 M...Ch. 16 - A solution is prepared by mixing 100.0 mL of 1.0 ...Ch. 16 - Prob. 52ECh. 16 - Calculate the final concentrations of K+(aq),...Ch. 16 - A solution is prepared by mixing 75.0 mL of 0.020...Ch. 16 - A 50.0-mL sample of 0.00200 M AgNO3 is added to...Ch. 16 - Prob. 56ECh. 16 - A solution contains 1.0 105 M Na3PO4. 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Ksp...Ch. 16 - Prob. 74ECh. 16 - Prob. 75ECh. 16 - The solubility of copper(II) hydroxide in water...Ch. 16 - A solution contains 0.018 mole each of I, Br, and...Ch. 16 - You have two salts, AgX and AgY, with very similar...Ch. 16 - Tooth enamel is composed of the mineral...Ch. 16 - The U.S. Public Health Service recommends the...Ch. 16 - Prob. 81AECh. 16 - Calculate the mass of manganese hydroxide present...Ch. 16 - Prob. 83AECh. 16 - The active ingredient of Pepto-Bismol is the...Ch. 16 - Nanotechnology has become an important field, with...Ch. 16 - The equilibrium constant for the following...Ch. 16 - Calculate the concentration of Pb2+ in each of the...Ch. 16 - Will a precipitate of Cd(OH)2 form if 1.0 mL of...Ch. 16 - a. 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