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JEE Advanced (Single Correct MCQs): Hydrocarbons - JEE MCQ


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30 Questions MCQ Test Chapter-wise Tests for JEE Main & Advanced - JEE Advanced (Single Correct MCQs): Hydrocarbons

JEE Advanced (Single Correct MCQs): Hydrocarbons for JEE 2024 is part of Chapter-wise Tests for JEE Main & Advanced preparation. The JEE Advanced (Single Correct MCQs): Hydrocarbons questions and answers have been prepared according to the JEE exam syllabus.The JEE Advanced (Single Correct MCQs): Hydrocarbons MCQs are made for JEE 2024 Exam. Find important definitions, questions, notes, meanings, examples, exercises, MCQs and online tests for JEE Advanced (Single Correct MCQs): Hydrocarbons below.
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JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 1

Marsh gas mainly contains (1980)

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 2

Which of the following decolourises alkaline KMnO4 solution(1980)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 2

Unsaturated hydrocarbons decolourise alk. KMnO4 solution; C2H4 (H2C = CH2) is an alkene.

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JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 3

The compound with the highest boiling point is (1982 - 1 Mark)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 3

In a homologous series, higher the number of C-atoms, higher is the b.p.

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 4

The maximum number of isomers for an alkene with the molecular formula C4H8 is (1982 - 1 Mark)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 4

Four isomers

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 5

When propyne is treated with aqueous H2SO4 in presence of HgSO4 the major product is (1983 - 1 Mark)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 5

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 6

Which of the following compounds does not dissolve in conc. H2SO4 even on warming? (1983 - 1 Mark)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 6

CH2 = CH2 + H2SO4 → CH3CH2OSO3H
C6H6 + H2SO4 → C6H5SO3H + H2O
C6H14 + H2SO4 → No reaction

Only hexane does not dissolve in conc. H2SO4 even on warming.

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 7

Baeyer ’s reagent is : (1984 - 1 Mark)

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 8

Acidic hydrogen is present in : (1985 - 1 Mark)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 8

Acidic hydrogen is present in alkynes, attached to the triply bonded C-atoms. They can be easily removed by means of a strong base.

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 9

Anti-Markovnikoff addition of HBr is not observed in : (1985 - 1 Mark)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 9

TIPS/Formulae : Anti-Markovnikoff’s addition of HBr is observed only with unsymmetrical alkenes, a, b, and d.

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 10

The highest boiling point is expected for : (1986 - 1 Mark)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 10

For isomeric alkanes, th one having longest straight chain has highest b.p. because of larger surface area.

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 11

Which of the following will have least hindered rotation about carbon-carbon bond? (1987 - 1 Mark)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 11

Ethylene has restricted rotation [due to C = C], acetylene no rotation [due to C ≡ C], hexachloroethane has more rotation than ethylene but less than ethane because of greater size of the substituent (chlorine) than in ethane (substituent is hydrogen).

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 12

When cyclohexane is poured on water, it floats, because:

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 13

The product(s) obtained via oxymercuration (HgSO4 + H2SO4) of 1- butyne would be (1999 - 2 Marks)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 13

TIPS/Formulae : Hydration of alkynes via mercuration takes place in accordance with Markovnikov's manner rule

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 14

Propyne and propene can be distinguished by (2000S)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 14

In propyne (CH3C ≡CH), the terminal hydrogen is acidic and reacts with ammonical AgNO3.

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 15

Which one of the following will react fastest with H2 under catalytic hydrogenation condition ? (2000S)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 15

TIPS/Formulae : The relative rates of hydrogenation decreases with increase of steric hinderance.
R2C = CH2 > RCH = CHR > R2C = CHR > R2C = CR2
Among the four olefins, (a) and (b) are less stable (Saytzeff  rule). Further in (a), the  bulky alkyl groups are on same side (cis-isomer), hence it is less stable.

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 16

In the presence of peroxide, hydrogen chloride and hydrogen iodide do not give anti-Markovnikov addition to alkenes because(2001S)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 16

TIPS/Formulae : Peroxide effect is effective only in case of HBr and not in case of HCl and HI.

For HCl, Step-I (b) is endothermic while step-II is exothermic but for HI, Step-I(b) is exothermic while Step-II is endothermic.

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 17

Hydrogenation of the above compound in the presence of poisoned palladium catalyst gives (2001S)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 17

TIPS/Formulae : Addition on triple bond takes place by the syn-addition of hydrogen.
Since the configuration of the double bond already present is cis, the compound formed will have a plane of symmetry and hence optically inactive.

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 18

The reaction of propene with HOCl proceeds via the addition of(2001S)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 18

TIPS/Formulae : Alkenes undergo electrophilic addition reactions.
HOCl undergoes self-ionization

So, it is the Cl+ that attacks in the first step.

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 19

The nodal plane in the π-bond of ethene is located in

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 19

TIPS/Formulae : The π bond is formed by the sideways overlapping of two p-orbitals of the two carbon atoms.
The molecular plane does not have any π electron density as the p-orbitals are perpendicular to the plane containing the ethene molecule. The nodal plane in the π-bond of ethene is located in the molecular plane.

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 20

Consider the following reaction (2002S)

Identify the structure of the major product 'X'

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 20

Br is less reactive and more selective and so the most stable free radical (3°) will be the major product.

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 21

Identify the reagent from the following list which can easily distinguish between 1-butyne and 2-butyne (2002S)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 21

TIPS/Formulae : In 1-butyne terminal hydrogen is acidic where as in 2-butyne there is no terminal hydrogen. Thus 2-butyne will not react with ammonical Cu2Cl2. While 1-butyne, being terminal alkyne, will give red ppt. with ammonical cuprous chloride

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 22

(2003S)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 22

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 23

Which of the following is used for the conversion of 2-hexyne into trans-2-hexene ? (2004S)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 23

H2/Pd/BaSOreduces  an alkyne to cis-alkene, H2/Pt reduces it to alkane, NaBH4 does not reduce an alkyne.
Reduction of an alkyne by active metal in liq. NH3 gives trans-alkene.

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 24

On monochlorination of 2-methylbutane, the total number of chiral compounds formed is (2004S)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 24

                                                   

(i) Chlorination at C-2 and C-4 produces no chiral compounds
(ii) Chlorination at C-3 produces a chiral carbon marked with star (d and l form).
(iii) Chlorination at C-1 also produces a chiral carbon marked with star (d and l form).

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 25

Identify the product, P in the following reaction : CH3 - CH = CH2 + NOCl —→ P (2006 - 3M, –1)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 25

Nitrosyl chloride adds on olefins accor ding to Markovnikof’s rule, where NO+ constitutes the positive part of the addendum.

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 26

Cyclohexene on ozonolysis followed by reaction with zinc dust and water gives compound E. Compound E on further treatment with aqueous KOH yields compound F.
Compound F is (2007)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 26

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 27

The synthesis of 3-octyne is achieved by adding a bromoalkane into a mixture of sodium amide and an alkyne.The bromoalkane and alkyne respectively are (2010)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 27

Only (d) can form 3-Octyne

                                         

CH3CH2C ≡ CCH2CH2CH2CH3+ NaBr

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 28

The bond energy (in kcal mol–1) of a C–C single bond is approximately (2010)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 28

C – C bond energy = 348 kJ/mol = kcal/mol
= 82.85 kcal/mol ≈ 100 kcal/mol.

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 29

In allene (C3H4), the type(s) of hybridisation of the carbon atoms is (are) :     (2012)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 29

Allene (C3H4) is

JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 30

The number of optically active products obtained from the complete ozonolysis of the given compound is :      (2012)

Detailed Solution for JEE Advanced (Single Correct MCQs): Hydrocarbons - Question 30

Ozonolysis is an organic reaction in which the unsaturated bonds of alkenes, alkynes, or azo compounds are cleaved by an ozone molecule (O3).
In ozonolysis of alkenes, multiple carbon-carbon double bonds are cleaved by ozone molecules and are replaced by carbon-oxygen bonds i.e., carbonyl groups. Mechanism of ozonolysis includes two steps.

In the first step, ozone being electrophilic in nature, reacts with the alkene rapidly and cleaves the carbon-carbon double bond to produce a cyclic peroxide known as ozonide.

In the second step, the decomposition of ozonide (or work-up reaction) is carried out by reductive work-up or oxidative work-up. The reductive work-up yields aldehydes or ketones whereas oxidative work-up gives carboxylic acids as the products and this is the complete ozonolysis. The products of the reaction depends on the type of multiple bonds being oxidised and the work-up conditions.

Given compound: 
Complete ozonolysis reaction of given compound is as follows:

Now, for a molecule to be optically active, there must be a chiral carbon centre in the molecule which means the carbon atom must be attached to the four different groups. But the products obtained do not contain any chiral carbon centre, hence the products obtained are optically inactive. Thus, the number of optically active products obtained from the complete ozonolysis of the given compound are zero.

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