pH of a buffer solution of \(CH_3CH_2COOH(aq.)~\&~CH_3CH_2COONa(aq.) \) is 4.
Then, the ratio of \(\frac{[CH_3CH_2COO^-]}{[CH_3CH_2COOH]}\) is-
(Given \(K_a=10^{-5} \))

1.  0.1
2.  10
3.  0.2
4.  20
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The pH of an ammonium phosphate solution, if the pKa of phosphoric acid and the pKb of ammonium
hydroxide are 5.23 and 4.75 respectively, is:

1. 8 2. 6
3. 7 4. 10
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Arrange the following solution in the decreasing order of pOH :

(A). 0.01 M HCl

(B). 0.01 M NaOH

(C). 0.01 M CH3COONa

(D). 0.01 M NaCl

1. (B) > (C) > (D) > (A)

2. (A) > (C) > (D) > (B)

3. (B) > (D) > (C) > (A)

4. (A) > (D) > (C) > (B)

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The \(p K_a\) of a weak acid (HA) and \(p K_b\) of a weak base (BOH) are 3.2 and 3.4, respectively.
The pH of their salt (AB) solution is:

1. 7.0

2. 1.0

3. 7.2

4. 6.9

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The amount of water in litres that must be added to 1 litre of an aqueous solution of HCl with a pH of 1 to create an aqueous solution with pH of 2, is:

1. 2.0 L

2. 9.0 L

3. 0.1 L

4. 0.9 L

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The pH of 0.001 M NaOH solution will be:

1. 3
2. 11
3. -3
4. 2
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If 200 mL of 0.01 M HCl is mixed with 400 mL of 0.01 M H2SO4, what is the pH of the resulting mixture?
(Given: log 2 = 0.30, log 3 = 0.48, log 5 = 0.70, log 7 = 0.84, log 11 = 1.04)

1. 1.14
2. 1.78
3. 2.34
4. 3.02
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The pH of the solution obtained by mixing 600 mL of 0.04 M HCl and 400 mL of 0.02 M H2SO4 is:
[log 4 = 0.6]

1. 3.4
2. 5.4
3. 1.4
4. 2.4
 



 
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If the concentration of  \(\text{H}^+\) ions is increased by a factor of 1000, what will happen to the pH?

1. Decreased by 3
2. Increased by 3
3. There is no change in pH
4. Decreased by 1
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