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What is the pH of 0.070 M dimethylamine?

Short Answer

Expert verified

Answer

The value of pHis obtained as: 11.81

Step by step solution

01

Define Gaseous State

In water, strong acids totally dissociate. Their conjugate bases aren't very strong. In water, weak acids only partly dissociate. Their conjugate foundations are solid.

The equilibrium in any acid-base reaction favours the reaction that sends the proton to the stronger base.

02

Construction of ICE table

It is given that:

0.070M(CH3)2NH

Appendix C: Kb=5.9×10-4

To begin, create the balanced equation for (CH3)2NHdissociation in water.

localid="1662033204023" (CH3)2NH+H2(CH3)2NH2++OH

Then, to get the equation for Kb, build the ICE table.

localid="1662033218654" [(CH3)2NH]+H2OC[(CH3)2NH2+]+[OH-]I0.070M00C-x+x+xE0.070M-x+x+xKa=[OH-][(CH3)2NH2+][CH32NH]Ka=x20.070-x

03

Evaluate the value of 


It is known that:

x=[CH32NH2+]=[OH-]

The Kbof(CH3)2NH2is quite tiny since it is a weak base. Assume that x has no influence on the denominator's 0.070MM. Then, to solve for x, insert the Kb.

Kb=x20.070.........................(1)x2=(Kb)(0.070)...................(2)x=(Kb)(0.070).................(3)=(5.9×10-4)(0.070).......(4)x=6.43×10-4M.................(5)

We know that x=OH-. Using the Kwof water, solve for [H3O+].

Kw=[H3O+][OH-]............(6)[H3O+]=[Kw][OH-].....................(7)=1.0×10-146.43×10-3..............(8)[H3O+]=1.56×10-12M............(9)

Now, solving to evaluate the value of pHas:

pH=-log[H3O+]....................(10)=-log(1.56×10-12)...........(11)pH=11.81...............................(12)

Therefore, the value of pHis: 11.81

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Most popular questions from this chapter

Which are Lewis acids and which are Lewis bases?

(a)Cu2+(b)Cl-(c)SnCl2(d)OF2

Auto ionization occurs in methanol (CH3OH)and in ethylenediamine (NH2CH2CH2NH2).

(a) The auto ionization constant of methanol(Kmet)is 2×10- 17. What is [CH3O-]in pure (CH3OH)?

(b) The concentration ofNH2CH2CH2NH2in pure NH2CH2CH2NH2is2×10- 8M. What is the auto ionization constant of ethylenediamine(Ken)?

The NH+4 ion forms acidic solutions, and the CH3COO- ion forms basic solutions. However, a solution of ammonium acetate is almost neutral. Do all of the ammonium salts of weak acids form neutral solutions? Explain your answer.

Nitrogen is discharged from wastewater treatment facilities into rivers and streams, usually as NH3and role="math" localid="1663321622328" NH4:
role="math" localid="1663321638309" NH3(aq) +H2O(l)NH4+(aq) + OH-(aq)Kb= 1.76×10- 5

One strategy for removing it is to raise the pH and “strip” the role="math" localid="1663321651423" NH3from solution by bubbling air through the water.

(a) At pH=7.00, what fraction of the total nitrogen in solution isrole="math" localid="1663321664485" NH3, defined asrole="math" localid="1663321682077" [NH3]/(NH3+NH4+)

(b) What is the fraction at pH 10.00?

(c) Explain the basis of ammonia stripping.

Question: which solution has the higher pH ? Explain.

(a) A 0.1 M solution of an acid with Ka=1×10-4 or one withKa=4×10-5

(b) A 0.1 Msolution of an acid with pKa= 3.0or one withpKa= 3.5

(c) A 0.1 M solution or a 0.01 M solution of a weak acid

(d) A 0.01 M solution of a weak acid or a 0.01Msolution of a strong acid

(e) A 0.01 Msolution of an acid or a 0.01 m solution of a base

(f) A solution of pOH 6.0 or one of pOH 8.0

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