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Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - JEE MCQ


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17 Questions MCQ Test Chapter-wise Tests for JEE Main & Advanced - Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry

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Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 1

In a compound C, H and N atoms are present in 9 : 1 : 3.5 by weight. Molecular weight of compound is 108. Molecular formula of compound is [2002]

Detailed Solution for Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 1


Empirical formula = C3H4N

(C3H4N)n = 108, (12 × 3 + 4 × 1 + 14)n =108

(54)n = 108 ⇒ n = = 2

∴ molecular formula = C6H8N2

Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 2

With increase of temperature, which of these changes? [2002]

Detailed Solution for Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 2

Among all the given options molarity is correct because the term molarity involve volume which increases on increasing temperature.

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Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 3

Number of atoms in 558.5 gram Fe (at. wt. of Fe = 55.85 g mol–1) is

Detailed Solution for Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 3

Fe (no. of moles) = = 10 moles

C (no. of moles)  in 60 g of C = 60/12 = 5 moles.

Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 4

What volume of hydrogen gas, at 273 K and 1 atm. pressure will be consumed in obtaining 21.6 g of elemental boron (atomic mass = 10.8) from the reduction of boron trichloride by hydrogen ? [2003]

Detailed Solution for Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 4

2BCl3 + 3H2 → 2B+ 6HCl

Now, since 10.8 gm boron requires hydrogen

x 22.4 L at N.T.P

hence 21.6 gm boron requires hydrogen

x 21.6 = 67.2 L at N.T. P..

Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 5

25ml of a solution of barium hydroxide on titration with a 0.1 molar solution of hydrochloric acid gave a litre value of 35ml. The molarity of barium hydroxide solution was [2003]

Detailed Solution for Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 5

25 × N = 0.1 × 35 ; N = 0.14
Ba(OH)2 is diacid base hence N = M × 2  or  M =  ⇒  M = 0.07 M

Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 6

6.02 × 1020 molecules of urea are present in 100 ml of its solution. The concentration of urea solution is [2004]    (Avogadro constant, NA = 6.02 × 1023 mol–1)

Detailed Solution for Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 6

Moles of urea present in 100 ml of sol.= 

= 0.01M

[ ∵ M = Moles of solute present in 1L of solution]

Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 7

To neutralise completely 20 mL of 0.1 M aqueous solution of phosphorous acid (H3PO3), the value of 0.1 M aqueous KOH solution required is [2004]

Detailed Solution for Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 7

N1V1 = N2 V2 ( Note : H3PO3 is dibasic
∴ M = 2N) 20 x 0.2 = 0.1 x V (Thus. 0.1 M = 0.2 N)
∴ V = 40 ml

Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 8

The ammonia evolved from the treatment of 0.30 g of an organic compound for the estimation of nitrogen was passed in 100 mL of 0.1 M sulphuric acid. The excess of acid required 20 mL of 0.5 M sodium hydroxide solution for complete neutralization. The organic compound is [2004]

Detailed Solution for Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 8

H2SO4 is dibasic. 0.1 M H2SO4 = 0.2N H2SO4 [ ∵ M = 2xN ]
Meq of H2SO4 taken = = 100 x 0.2 = 20
Meq of H2SO4 neutralised by NaOH = 20 x 0.5 = 10
Meq of H2SO4 neutralised by NH3  = 20 – 10 = 10

% of  N

= 46.6

% of nitrogen in urea= 46.6

[Mol.wt of urea =60]

Similarly % of Nitrogen in Benzamide

= 11.5%   [C6H5CONH2 = 121]

Acetamide  = = 23.4%  [ CH3CONH= 59]

Thiourea =  = 36.8%  [NH2CSNH2 = 76]

Hence the compound must be urea.

Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 9

Two solutions of a substance (non electrolyte) are mixed in the following manner. 480  ml of 1.5 M first solution + 520 ml of 1.2 M second solution. What is the molarity of the final mixture ?[2005]

Detailed Solution for Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 9

TIPS/Formulae : From the molarity equation.
M1V1 + M2V2 = MV
Let M be the molarity of final mixture,

where V = V1 + V2

 = 1.344 M

Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 10

If we consider that 1/6, in place of 1/12, mass of carbon atom is taken to be the relative atomic mass unit, the mass of one mole of the substance will [2005]

Detailed Solution for Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 10

Relative atomic mass

Now if we use 1/6 in place of 1/12 the formula becomes

Relative atomic m ass =

∴ Relative atomic mass decrease twice

Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 11

How many moles of magnesium phosphate, Mg3(PO4)2 will contain 0.25 mole of oxygen atoms? [2006]

Detailed Solution for Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 11

1 Mole of Mg3(PO4)2 contains 8 mole of oxygen atoms

∴  8 mole of oxygen atoms ≡ 1 mole of Mg3(PO4)2 mole of Mg3(PO4)2

0.25 mole of oxygen atom ≡ x mole of Mg3(PO4)2
= 3.125x 10-2  mole of  Mg3(PO4)2

Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 12

Density of a 2.05M solution of acetic acid in water is 1.02 g/mL. The molality of the solution is [2006]

Detailed Solution for Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 12

TIPS/Formulae : Apply the formula d = 

∴ 1.02 = 2.05 

On solving we get, m = 2.288 mol/kg

Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 13

The density (in g mL–1) of a 3.60 M sulphuric acid solution that is 29% H2SO4 (molar mass = 98 g mol–1) by mass will be

Detailed Solution for Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 13

Since molarity  of solution is 3.60 M. It means 3.6 moles of H2SO4 is present in its 1 litre solution.
Mass of 3.6 moles of H2SO4 = Moles × Molecular mass = 3.6 × 98 g = 352.8 g
∴ 1000 ml solution has 352.8 g of H2SO4
Given that 29 g of H2SO4 is present in = 100 g of solution
∴ 352.8 g of H2SO4 is present in

 of solution = 1216 g of solution

Density =  = 1.216 g/ml  = 1.22 g/ml

Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 14

In the reaction, [2007] 

2Al(s) + 6HCl(aq) → 2Al3+ + (aq) + 6Cl- (aq )+ 3H2 (g)

Detailed Solution for Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 14

2Al(s) + 6HCl(aq) → 2Al3+(aq) + 6Cl(aq) + 3H2(g)
∵ 6 moles of HCl produces = 3 moles of H2 = 3 × 22.4 L of H2 at S.T.P
∴ 1 mole of HCl produces =  of H2 at S.T..PP      
= 11.2 L of  H2 at STP

Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 15

Consider the following reaction :

The value’s of x, y and z in the reaction are, respectively : [JEE M 2013]

Detailed Solution for Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 15

On balancing the given equations we get

2MnO4+ 5C2O4- + 16H + —→ 2Mn ++
+10CO2+ 8H2O
So, x = 2, y = 5 & z = 16

Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 16

A gaseous hydrocarbon gives upon combustion 0.72 g of water and 3.08 g of CO2. The empirical formula of the hydrocarbon is : [JEE M 2013]

Detailed Solution for Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 16

∵18 g, H2O contains = 2 gm H

∴ 0.72 gm H2O contains =  = 0.08 gm H

∵ 44 gm CO2 contains = 12 gm C

∴ 3.08 gm CO2 contains = = 0.84 gm C

∴ C : H =  = 0.07 : 0.08 = 7 : 8

∴ Empirical formula = C7H8

Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 17

Experimentally it was found that a metal oxide has formula M0.98O. Metal M, present as M2+ and M3+ in its oxide.Fraction of the metal which exists as M3+ would be : [JEE M 2013]

Detailed Solution for Test: JEE Main 35 Year PYQs- Some Basic Concepts of Chemistry - Question 17

For a one mole of the oxide Moles of M = 0.98, Moles of O2– = 1
Let moles of M3+ = x Moles of M2+ = 0.98– x on balancing charge (0.98 – x) × 2 + 3x – 2 = 0 ⇒ x = 0.04

 = 4.08%

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