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JEE Chemistry Solved Question Paper 2013

Multiple Choice Questions

The number of radial nodes of 3s and 2p orbitals respectively are

0, 2
2, 0
1, 2
2, 1

The basis of quantum mechanical model of an atom is

angular momentum of electron
quantum numbers
dual nature of electron
black body radiation

The number of elements present in the fourth period is

Identify the correct set.

Molecule Hybridisation of central atom Shape

PCl₅ dsp³ square pyramidal
[Ni(CN)₄]^2- sp³ tetrahedral
SF₆ sp³d² octahedral
IF₃ dsp³ pyramidal

Which one of the following statements is correct?

Hybrid orbitals do not form σ bonds.
Lateral overlap of p-orbitals or p- and d-orbitals produces $π$ -bonds.
The strength of bonds follows the order-
σ_p-p < σ_s-_s < $π$ _p-p
s-orbitals do not form σ bonds.

The degree of ionization of 0.10 M lactic acid is 4.0%

The value of K_c is

1.66 × 10^-5
1.66 × 10^-4
1.66 × 10^-3
1.66 × 10^-2

The pH of a buffer solution made by mixing 25 mL of 0.02 M NH₄OH and 25 mL of 0.2 M NH₄Cl at 25° is pK_b of NH₄OH = 4.8)

For which one of the following reactions, the entropy change is positive?

H₂ (g) + $\frac{1}{2}$ O₂ (g) → H₂O (l)
Na⁺ (g) + Cl^- (g) → NaCl (s)
NaCl (l) → NaCl (s)
H₂O (l) → H₂O (g)

9.
Solution 'X' contains Na₂CO₃ and NaHCO₃, 20 mL of X when titrated using methyl orange indicator consumed 60 mL of 0.1 M HCl solution. In another experiment, 20 mL of X solution when titrated using phenolphthalein, consumed 20 mL of 0.1 M HCl solution. The concentrations (in mol L^-1) of Na₂CO₃ and NaHCO₃ in X are respectively

0.01, 0.02

0.1, 0.1

0.01, 0.01

0.1, 0.01

0.1, 0.1

For a titration of a basic solution of Na₂CO₃ and NaHCO₃ against HCl, if phenolphthalein is used as indicator, the end product is indicated only for half neutralization of Na₂CO₃, i.e. upto NaHCO₃

Na₂CO₃+ HCl → NaHCO₃+ NaCl

The remaining solution then contains the unreacted NaHCO₃ from this reaction plus the unreacted NaHCO₃ originally in the solution. At the phenolphthalein end point, there is no reaction between HCl and NaHCO₃.

From the equation,

Mole of HCl consumed = mol of Na₂CO₃

10 mol of 0.1 M = 20 mol of 0.1 M

$∴$ The concentration of Na₂CO₃ in solution X = 0.1 M

For a quantity of Na₂CO₃exactly half volume of the HCl is used at the phenolphthalein
end point and the second half volume of the HCl is required for complete neutralization of Na₂CO₃ at methyl orange end point.

NaHCO₃ + HCl → NaCl + CO₂ + H₂O

$∴$ The volume of HCl required to neutralize Na₂CO₃in original sample = 2 × 20 mL = 40 mL

If methyl orange is used, the end point is indicated when all the alkali is neutralized.

As 40 mL of 0.1 M HCl is consumed in complete neutralization of Na₂CO₃ at methyl ornage end point from the original sample would be reamining HCl

= (60 - 40) mL

= 20 mL

Now,

1 mol of NaHCO₃ = 1 mol of HCl

$∴$ 0.1 mol of NaHCO₃ = 0.1 mol of HCl