Explanation

Volume of base used (pipette) = 25.00 cm\(^3\); 

Average volume of the acid = \(\frac{18.00   18.00  18.00}{3}\) = 18.00 cm\(^{3}\) 

(b)(i) Mass of KOH per dm\(^3\) of B = \(\frac{1.4 \times 1000}{250}\) = 5.6 g/dm\(^{-3}\)

Molar mass of KOH = 39 + 16 + 1 = 56g 

Concentration of B = \(\frac{5.6}{56}\) = 0.01 mol dm\(^{-3}\) 

(b)(ii) Equation for the reactions; H\(_2\)SO\(_4\) + 2KOH \(\to\) K\(_2\)SO\(_4\) + 2H\(_2\)O

From the equation, 

Concentration of A (C\(_A\)) x volume of A(V\(_A\)) mole ratio \(\frac{A}{B}\) 

Concentratio B(C\(_A\)) x volume of (V\(_B\)) 

\(\frac{C_A \times 18.00}{0.10 \times  25}\)  = \(\frac{1}{2}\)

C\(_A = \frac{0.10 \times 25}{2 \times 18.00}\) = 0.0694 mol/dm\(^3\) 

(b)(iii) 1 dm\(^3\) of 1.0 mol/dm\(^3\)  

H\(_2\)SO\(_4\) contains (2 x 6.0 x 10\(^{23}\))

Hydrogen atom  1 dm\(^3\) of 0.0694 mol dm\(^{-3}\) 

H\(_2\)SO\(_4\) contains = (2 x 6.0 x 10\(^{23}\) x 0.6694)  8.328 x 10\(^{22}\)  x 10\(^{22}\) 

(c)(i) Less than 

(ii) Greater than; C is NaHCO\(_3\); D is Pb(NO\(_3\))\(_2\) 

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