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Test: Equllibrium (September 18) - NEET MCQ


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15 Questions MCQ Test Daily Test for NEET Preparation - Test: Equllibrium (September 18)

Test: Equllibrium (September 18) for NEET 2024 is part of Daily Test for NEET Preparation preparation. The Test: Equllibrium (September 18) questions and answers have been prepared according to the NEET exam syllabus.The Test: Equllibrium (September 18) MCQs are made for NEET 2024 Exam. Find important definitions, questions, notes, meanings, examples, exercises, MCQs and online tests for Test: Equllibrium (September 18) below.
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Test: Equllibrium (September 18) - Question 1

Solubility of MX2-type eletrolytes is 0.5 × 10–4 mole/lit, then find out Ksp of electrolytes [2002]

Detailed Solution for Test: Equllibrium (September 18) - Question 1

Given s = 0.5 × 10–4 moles/lit

Test: Equllibrium (September 18) - Question 2

Solution of 0.1 N NH4OH and 0.1 N NH4Cl has pH 9.25. Then find out pKb of NH4OH [2002]

Detailed Solution for Test: Equllibrium (September 18) - Question 2

but pOH+ pH = 14  or pOH = 14 – pH

14 – 9.25 – 0 = pKb pKb = 4.75

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Test: Equllibrium (September 18) - Question 3

 The reaction quotient (Q) for the reaction

is given by

The reaction will proceed from right to left if [2003]

where Kc is the equilibrium constant

Detailed Solution for Test: Equllibrium (September 18) - Question 3

For reaction to proceed from right to left

i.e the reaction will be fast in backward direction i.e rb > rf.

Test: Equllibrium (September 18) - Question 4

Which one of the following orders of acid strength is correct? [2003]

Detailed Solution for Test: Equllibrium (September 18) - Question 4

The higher is the tendency to donate proton, stronger is the acid. Thus the correct order is R – COOH > HOH > R – OH > CH ≡ CH depending upon the rate of donation of proton.

Test: Equllibrium (September 18) - Question 5

The solubility product of AgI at 25ºC is 1.0 × 10–16 mol2 L–2. The solubiliy of AgI in  10–4 N solution of KI at 25ºC is approximately(in mol L–1) [2003]

Detailed Solution for Test: Equllibrium (September 18) - Question 5

Ksp for AgI = 1 × 10–16 In solution of KI, I would be due to the both AgI and KI, 10–4 solution KI would provide = 10–4 I
AgI would provide, say = x I (x is solubility of AgI)

as x is very small ∴ x2 can be ignored

∴      10–4 x = 10–16

Test: Equllibrium (September 18) - Question 6

The solubility product of a sparingly soluble salt AX2 is 3.2 x 10-11 . Its solubility ( in moles/litre) is
[2004] 

Detailed Solution for Test: Equllibrium (September 18) - Question 6

For 

Test: Equllibrium (September 18) - Question 7

The rapid change of pH near the stoichiometric point of an acid-base titration is the basis of indicator detection. pH of the solution is related to ratio of the concentrations of the conjugate acid (HIn) and base (In) forms of the indicator by the expression [2004]

Detailed Solution for Test: Equllibrium (September 18) - Question 7

For an acid-base indicator

Taking negative on both sides

or we can write  

Test: Equllibrium (September 18) - Question 8

What is the correct relation ship between the pHs of isomolar solutions of sodium oxide (pH1), sodium sulphide (pH2), sodium selenide (pH3) and sodium telluride (pH4)? [2 00 5]

Detailed Solution for Test: Equllibrium (September 18) - Question 8

The solution formed from isomolar solutions of sodium oxide, sodium sulphide, sodium selenide H2O, H2S, H2Se & H2Te respectively.
As the acidic strengh increases from H2O to H2Te thus pH decreases and hence the correct of pHs is pH1 > pH2 > pH3 > pH4.

Test: Equllibrium (September 18) - Question 9

For the reaction [2006]

Which of the following statements is not true ?

Detailed Solution for Test: Equllibrium (September 18) - Question 9

First option is incorrect as the value of KP given is wrong. It should have been

Test: Equllibrium (September 18) - Question 10

The hydrogen ion concentration of a 10–8 M HCl aqueous solution at 298 K (Kw = 10–14) is  [2006]

Detailed Solution for Test: Equllibrium (September 18) - Question 10

For a solution of 10–8 M HCl [H+] = 10–8 [H+] of water = 10–7
Total [H+] = 10–7 + 10–8 = 10 × 10–8 + 10–8
10–8 (10 + 1) = 11 × 10–8

Test: Equllibrium (September 18) - Question 11

Which of the following pairs constitutes a buffer?

Detailed Solution for Test: Equllibrium (September 18) - Question 11

HNO2 is a weak acid and NaNO2 is salt of that weak acid and strong base (NaOH).

Test: Equllibrium (September 18) - Question 12

The following equilibrium constants are given:



The equilibrium constant for the oxidation of NH3 by oxygen to give NO is

Detailed Solution for Test: Equllibrium (September 18) - Question 12

Given,

We have to calculate

For this equation,

Now operate,

Test: Equllibrium (September 18) - Question 13

Equal volumes of three acid solutions of pH 3, 4 and 5 are mixed in a vessel. What will be the H+ ion concentration in the mixture ? [2008]

Detailed Solution for Test: Equllibrium (September 18) - Question 13

[H3O]+ for a solution having pH = 3 is given by [H3O]+ = 1×10–3 moles/litre  

Similarly for solution having pH = 4, [H3O]+ = 1 × 10–4 moles/ litre and for pH=5 [H3O+] = 1×10–5 moles/ litre Let the volume of each solution in mixture be IL, then total volume of mixture solution  L = (1 + 1 + 1) L =3L
Total [H3O]+ ion present in mixture solution = (10–3 + 10–4 + 10–5) moles Then [H3O]+ ion concentration of mixture solution

=  0.00037 M = 3.7 ×10–4 M.

Test: Equllibrium (September 18) - Question 14

Equimolar solutions of the following were prepared in water separately. Which one of the solutions will record the highest pH ? [2008]

Detailed Solution for Test: Equllibrium (September 18) - Question 14

The highest pH will be recorded by the most basic solution. The basic nature of hydroxides of alkaline earth metals increase as we move from Mg to Ba and thus the solution of BaCl2 in water will be most basic and so it will have  highest pH.

Test: Equllibrium (September 18) - Question 15

The values of Kp1 and Kp2 for the reactions

are in the ratio of 9 : 1. If degree of dissociation of X and A be equal, then total pressure at equilibrium (1) and (2) are in the ratio :

Detailed Solution for Test: Equllibrium (September 18) - Question 15

Given reaction are

Let the total pressure for reaction (i) and (ii) be P1 and P2 respectively, then

After dissociation,  

At equilibrium (1–α) α α
[Let 1 mole of X dissociate with α as degree of dissociation ]
Total number of moles =   1– α + α + α = (1+α)

Thus  

We have,

Dividing (i) by (ii), we get

i.e. Option (c) is correct answer.

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