MCQ Questions

MCQ Questions for Class 11 History Chapter 3 An Empire Across Three Continents with Answers

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An Empire Across Three Continents Class 11 MCQs Questions with Answers

An Empire Across Three Continents MCQ Question 1.
The best kind of wine came to Rome from _______
(a) Fayum
(b) Byzantium
(c) Galilee
(d) Campania

Answer

Answer: (d) Campania

Class 11 History Chapter 3 MCQ Question 2.
The Roman emperor who consolidated the rise of provincial upper classes so as to exclude the senators from military command was
(a) Augustus
(b) Constantine
(c) Gallienus
(d) Tiberius

Answer

Answer: (c) Gallienus

Class 11 History Chapter 3 MCQ Questions And Answers Question 3.
What were Amphorae?
(a) A type of army
(b) A type of container
(c) A type of district administrator
(d) None of the above

Answer

Answer: (b) A type of container

History Class 11 Chapter 3 MCQ Question 4.
Augustus, the first Roman Emperor was called the leading citizen whose Latin term is
(a) Basileus
(b) Dominus
(c) Princeps
(d) Res gestae

Answer

Answer: (c) Princeps

MCQ Of An Empire Across Three Continents Question 5.
Saint Augustine was bishop of the North African city of
(a) Annaba
(b) Algeria
(c) Hippo
(d) Numidia

Answer

Answer: (c) Hippo

Ch 3 History Class 11 MCQ Question 6.
The emperor who made Christianity the official religion in the Roman Empire was
(a) Alexander
(b) Augustus
(c) Constantine
(d) Nero

Answer

Answer: (c) Constantine

Class 11 History Ch 3 MCQ Question 7.
Roman ruler _____ was considered as the leading citizen only to show that he was not the absolute ruler.
(a) Augustus
(b) Constantine
(c) Gallienus
(d) Tiberius

Answer

Answer: (a) Augustus

An Empire Across Three Continents MCQs Class 11 Question 8.
In Roman urban life, the entertainment shows called spectacular happened for at least
(a) 150 days
(b) 160 days
(c) 167 days
(d) 176 days

Answer

Answer: (d) 176 days

Chapter 3 History Class 11 MCQ Question 9.
The religion of Islam arose during the
(a) 5th century CE
(b) 8th century CE
(c) 6th century CE
(d) 7th century CE

Answer

Answer: (d) 7th century CE

An Empire Across Three Continents MCQ Questions Question 10.
The Roman Empire got the best kind of wine from the city of
(a) Byzaciuma
(b) Campania
(c) Naples
(d) Sicily

Answer

Answer: (b) Campania

Empire Across Three Continents MCQ Question 11.
Christianity became the state religion of the Roman Empire in the
(a) 1st century CE
(b) 2nd century CE
(c) 3rd century CE
(d) 4th century CE

Answer

Answer: (d) 4th century CE

An Empire Across Three Continents Class 11 MCQ Question 12.
The Roman silver coin, known as the denarius, weighed _________ gm of pure silver.
(a) 2
(b) 3
(c) 4
(d) 5

Answer

Answer: (c) 4

Class 11 History An Empire Across Three Continents MCQ Question 13.
______ and Greek languages were used in the administration of the Roman Empire.
(a) Chinese
(b) Mayan
(c) Latin
(d) Turkish

Answer

Answer: (c) Latin

MCQ Questions For Class 11 History Chapter 3 Question 14.
Which one of the following is a rive that forms the boundary of the Roman Empire?
(a) Mekong River
(b) Rhine River
(c) Amur River
(d) Yangtze River

Answer

Answer: (b) Rhine River

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MCQ Questions for Class 11 Chemistry Chapter 13 Hydrocarbons with Answers

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Hydrocarbons Class 11 MCQs Questions with Answers

Question 1.
A dibromo derivative of an alkane reacts with sodium metal to form an alicyclic hydrocarbon. The derivative is ______.
(a) 2, 2-dibromobutane
(b) 1, 1-dibromopropane
(c) 1, 4-dibromobutane
(d) 1, 2-dibromoethane

Answer

Answer: (c) 1, 4-dibromobutane
Explanation:
The derivative is 1, 4 dibromobutane. This on reaction with sodium metal gives cyclobutane.
Hydrocarbons Class 11 MCQ
This reaction is an example of internal Wurtz reaction.

MCQ On Hydrocarbons Class 11 Question 2.
The position of double bond in alkenes can be located by :
(a) Hydrogenation of oil
(b) Ozonolysis
(c) Photolysis
(d) Hydration

Answer

Answer: (b) Ozonolysis
Explanation:
Ozonolysis is the cleavage of an alkene or alkyne with ozone to form organic compounds in which the multiple carbon-carbon bonds have been replaced by a double bond to oxygen. The outcome of the reaction depends on the type of multiple bonds being oxidized.

Bromine water can be also used to identify the position of a double bond. In this reaction, red-brown colour of bromine gets turned into coulorless indicating that there is a double bond.

Hydrocarbons Class 11 MCQ Pdf Question 3.
Nitrobenzene on reaction with conc. HNO3/H2SO4 at 80 – 100°C forms which one of the following products?
(a) 1, 2-Dinitrobenzene
(b) 1, 3-Dinitrobenzene
(c) 1, 4-Dinitrobenzene
(d) 1, 2, 4-Trinitrobenzene

Answer

Answer: (b) 1, 3-Dinitrobenzene
Explanation:
NO2 is an m-directing group and hence, 1, 3-dinitrobenzene is formed.
MCQ On Hydrocarbons Class 11

MCQ Of Hydrocarbons Class 11 Question 4.
Some meta-directing substituents in aromatic substitution are given. Which one is most deactivating?
(a) –C ≡ N
(b) -SO3H
(c) -COOH
(d) -NO2

Answer

Answer: (d) -NO2
Explanation:
The correct order of deactivation is
−NO2 > −C ≡ N > −SO32 H > −COOH

Hydrocarbon MCQ Class 11 Question 5.
Which of the following compounds will exhibit geometrical isomerism?
(a) 1 – Phenyl – 2 – butene
(b) 3 – Phenyl – 1 – butene
(c) 2 – Phenyl – 1 butene
(d) 1, 1 – Diphenyl – propene .

Answer

Answer: (a) 1 – Phenyl – 2 – butene
Explanation:
C6H5CH2−CH = CH−CH3 (1-phenyl-2-butene) exhibits the phenomenon of geometrical isomerism due to Cab = Cad structure, so its two isomers are possible which are given are follow :
Hydrocarbons Class 11 MCQ Pdf

Hydrocarbons MCQs With Answers Question 6.
The order of decreasing reactivity towards an electrophilic reagent, for the following : (i) Benzene (ii) Toluene (iii) Chlorobenzene (iv) Phenol would be:
(a) (i) > (ii) > (iii) > (iv)
(b) (ii) > (iv) > (i) > (iii)
(c) (iv) > (iii) > (ii) > (i)
(d) (iv) > (ii) > (i) > (iii)

Answer

Answer: (d) (iv) > (ii) > (i) > (iii)
Explanation:
Benzene having any activating group i.e., OH, R etc., undergoes electrophilic substitution very easily as compared to benzene itself. Thus toluene (C6H5CH3), phenol (C6H5OH) undergo electrophilic substitution very readily than benzene. Chlorine with +E and +M effect deactivates the ring due to strong -I effect. So, it is difficult to carry out the substitution in chlorobenzene than in benzene, so correct order is Phenol (iv) > Toluene (ii) > Benzene (i) > Chlorobenzene (iii)

Hydrocarbons MCQs Class 11 Question 7.
Pure methane can be prepared by
(a) Soda lime decarboxylation
(b) Kolbes electrolytic method
(c) Wurtz reaction
(d) Reduction with H2

Answer

Answer: (a) Soda lime decarboxylation
Explanation:
Methane cannot be prepared by either Wurtz reaction, Kolbes electrolytic method or by reduction of alkenes with H2. While acetic acid salt on heating with soda lime gives methane.
CH3COONa → CH4 + Na2CO3

Hydrocarbon Class 11 MCQ Question 8.
Hydrocarbon containing following bond is most reactive
(a) C ≡ C
(b) C = C
(c) C-C
(d) All of these

Answer

Answer: (a) C ≡ C
Explanation:
−C ≡ C−is most reactive because sp-hybridization.

MCQs On Hydrocarbons Class 11 Question 9.
The compound C3H4 has a triple bond, which is indicated by its reaction with
(a) Bromine water
(b) Bayers reagent
(c) Fehling solution
(d) Ammonical silver nitrate

Answer

Answer: (d) Ammonical silver nitrate
Explanation:
CH3−C ≡ C−H + AgNO3 → CH3 −C ≡ C−Ag
Propyne Ammonical Siver salt of Propyne

Hydrocarbons MCQs Question 10.
Isopropyl bromide on Wurtz reaction gives
(a) Hexane
(b) Propane
(c) 2, 3 – Dimethylbutane
(d) Neohexane

Answer

Answer: (c) 2, 3 – Dimethylbutane
Explanation:
CHMe2 − Br + 2Na + Br − CHMe2 + Br − CHMe2 \(\underrightarrow { dryEther } \) Me2CH − CHMe2 + 2NaBr

Hydrocarbons Class 11 MCQs Question 11.
Nitrobenzene on reaction with conc. HNO3/H2SO4 at 80 – 100°C forms which one of the following products?
(a) 1, 2-Dinitrobenzene
(b) 1, 3-Dinitrobenzene
(c) 1, 4-Dinitrobenzene
(d) 1, 2, 4-Trinitrobenzene

Answer

Answer: (b) 1, 3-Dinitrobenzene
Explanation:
NO2 is an m-directing group and hence, 1, 3-dinitrobenzene is formed.

Class 11 Hydrocarbons MCQs Question 12.
The angle strain in cyclobutane is
(a) 24°44
(b) 29°16
(c) 19°22
(d) 9°44

Answer

Answer: (d) 9°44
Explanation:
According to Baeyers strain theory, the amount of the strain is directly proportional to the angle through which a valency bond has deviated from its normal position . i.e., Amount of deviation) in cyclobutane (d) = (109∘28 − 90∘)/(2) = 9∘44

MCQ On Chapter Hydrocarbons Class 11 Question 13.
The first fraction obtained during the fractionation of petroleum is:
(a) Gasoline
(b) Diesel Oil
(c) Hydrocarbon Gases
(d) Kerosene Oil

Answer

Answer: (c) Hydrocarbon Gases
Explanation:
During fractionation or distillation of petroleum, gases light hydrocarbons in the form of gases are obtained from first fraction.

Hydrocarbons Class 11 Important Questions With Answers Pdf Question 14.
2 – Phenylpropene on acidic hydration gives
(a) 2 – Phenyl – 2 – propanol
(b) 2 – Phenyl – 1 – propanol
(c) 3 – Phenyl – 1 – propanol
(d) 1 – Phenyl – 2 – propanol

Answer

Answer: (a) 2 – Phenyl – 2 – propanol
Explanation:
Acidic hydration of 2-phenyl propene follows electrophilic reaction mechanism forming an intermediate 3° carbocation (more stable), there by forming 2-phenyl-2-propanol.
MCQ Of Hydrocarbons Class 11

Class 11 Chemistry Chapter 13 MCQ Question 15.
The coal tar fraction which contains phenol is:
(a) Heavy Oil
(b) Light Oil
(c) Middle Oil
(d) Green Oil

Answer

Answer: (c) Middle Oil
Explanation:
The second fraction of coal-tar distillation which distills at 170°−230°C is called middle-oil or olic oil. It contains mainly phenol, naphthalene etc.

Class 11 Chemistry Hydrocarbons MCQs Question 16.
Which one of these is not true for benzene?
(a) There are three carbon-carbon single bonds and three carbon-carbon double bonds.
(b) Heat of hydrogenation of benzene is less than the theoretical value
(c) It forms only one type of mono substituted product
(d) The bond angle between carbon-carbon bonds is 120 Degree

Answer

Answer: (a) There are three carbon-carbon single bonds and three carbon-carbon double bonds.
Explanation:
There are three carbon-carbon single bonds and three carbon-carbon double bonds.

Hydrocarbons Class 11 MCQ Pdf Downloa Question 17.
The catalyst used in Friedel – Crafts reaction is
(a) Aluminium Chloride
(b) Anhydrous Aluminium Chloride
(c) Ferric Chloride
(d) Copper .

Answer

Answer: (b) Anhydrous Aluminium Chloride
Explanation:
It is a catalyst-based electrophilic substitution reaction. Lewis acids like anhydrous AlCl3, anhydrous FeCl3, BF3 and BiCl3 can be used as catalysts. The catalyst facilitates more effective attack by the electrophile (R+, RCO+ etc.) on the benzene ring.

Question 18.
Alkyl halides react with dialkyl copper reagents to give?
(a) Alkanes
(b) Alkenes
(c) Hydrogen
(d) Carbon

Answer

Answer: (a) Alkanes
Explanation:
Alkyl halides react with dialkyl copper reagents to give Alkanes.

Question 19.
The lowest alkene, that is capable of exhibiting geometrical isomerism is
(a) Ethene
(b) But – 1- ene
(c) But – 2 – ene
(d) Propene.

Answer

Answer: (c) But – 2 – ene
Explanation:
The lowest alkene which is capable of exhibiting geometrical isomerism is 2-Butene

Question 20.
Presence of a nitro group in a benzene ring
(a) Activates the ring towards electrophilic substitution
(b) Renders the ring basic
(c) Deactivates the ring towards nucleophilic substitution
(d) Deactivates the ring towards electrophilic substitution

Answer

Answer: (d) Deactivates the ring towards electrophilic substitution
Explanation:
−NO2 group shows −M effect, so withdraws the electron density from the ring and hence deactivate the ring towards electrophilic aromatic substitution.

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MCQ Questions for Class 11 Chemistry Chapter 12 Organic Chemistry: Some Basic Principles and Techniques with Answers

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Check the below NCERT MCQ Questions for Class 11 Chemistry Chapter 12 Organic Chemistry: Some Basic Principles and Techniques with Answers Pdf free download. MCQ Questions for Class 11 Chemistry with Answers were prepared based on the latest exam pattern. We have provided Organic Chemistry: Some Basic Principles and Techniques Class 11 Chemistry MCQs Questions with Answers to help students understand the concept very well. https://mcqquestions.guru/mcq-questions-for-class-11-chemistry-chapter-12/

Organic Chemistry: Some Basic Principles and Techniques Class 11 MCQs Questions with Answers

Organic Chemistry Class 11 MCQ Question 1.
If two compounds have the same empirical formula but different molecular formula they must have
(a) Different percentage composition
(b) Different molecular weight
(c) Same viscosity
(d) Same vapour density

Answer

Answer: (b) Different molecular weight

MCQ On Organic Chemistry Class 11 Question 2.
Identify the chiral molecule among the following:
(a) Isopropyl alcohol
(b) 2-pentanol
(c) 1-bromo 3-butene
(d) Isobutyl alcohol

Answer

Answer: (d) Isobutyl alcohol
Explanation:
Chirality is the condition for a molecule to be optically active and here isobutyl alcohol is the only compound is optically active and hence it is the chiral molecule.

Class 11 Organic Chemistry MCQ Question 3.
0.0833mol of carbohydrate of empirical formula CH2O contain 1g of hydrogen. The molecular formula of the carbohydrate is
(a) C5H10O5
(b) C3H4O3
(c) C12H22O11
(d) C6H12O6

Answer

Answer: (d) C6H12O6
Explanation:
As 0.0833 mole carbohydrate has hydrogen = 1g
Therefore, 1 mole carbohydrate has hydrogen = (\(\frac {1}{0.0833}\)) = 12g
Empirical Formula (CH2O) has hydrogen = 2g
Hence n = \(\frac {(12)}{(2)}\) = 6
Hence molecular formula of carbohydrate =(CH2O)6 = C6H12O6

MCQ Of Organic Chemistry Class 11 Question 4.
The displacement of electrons in a multiple bond in the presence of attacking reagent is called
(a) Inductive effect
(b) Electromeric effect
(c) Resonance
(d) Hyper conjugation.

Answer

Answer: (b) Electromeric effect
Explanation:
The electromeric effect is a temporary effect brought into play at the requirement of attacking reagent. Electromeric effect refers to a molecular polarizability effect occurring by an intra-molecular electron displacement. It is the temporary effect.

Class 11 Chemistry Chapter 12 MCQ Question 5.
Which of the following cannot be represented by resonance structures?
(a) Dimethyl ether
(b) Nitrate anion
(c) Carboxylate anion
(d) Toluene

Answer

Answer: (a) Dimethyl ether
Explanation:
Ethers due to absence of delocalized pair of electrons do not show resonance.

Organic Chemistry MCQ Class 11 Question 6.
An organic compound which produces a bluish green coloured flame on heating in presence of copper is
(a) Chlorobenzene
(b) Benzaldehyde
(c) Aniline
(d) Benzoic acid

Answer

Answer: (d) Benzoic acid
Explanation:
Halogen containing compounds, e.g.,C6H5Cl when placed in a flame, the presence of halogen is revealed by a green to blue flame.

Some Basic Concepts Of Organic Chemistry Class 11 MCQ With Answers Question 7.
Which one is strongest acid among following options?
(a) CH2FCOOH
(b) CH2ClCOOH
(c) CHCl2COOH
(d) CHF2COOH

Answer

Answer: (b) CH2ClCOOH
Explanation:
CHF2−COOH. Difluoroacetic acid is strongest because presence of two F atoms increases its acidic nature.

Organic Chemistry Class 11 MCQ Pdf Question 8.
Insulin contains 3.4% sulphur. The minimum molecular weight of insulin is
(a) 350
(b) 470
(c) 560
(d) 940

Answer

Answer: (d) 940
Explanation:
Minimum mass of sulphur = wt. of its one atom = 32
As 3.4 gms of sulphur present in 100 gms.
Therefore, 32 gms of sulphur present in = (100 × 32)/(3.4) = 940

Organic Chemistry Class 11 MCQs Question 9.
What is the correct IUPAC name of
Organic Chemistry Class 11 MCQ
(a) 4-methoxy-2-nitrobenzaldehyde
(b) 4-formyl-3-nitro anisole
(c) 4-methoxy-6-nitrobenzaldehyde
(d) 2-formyl-5-methoxy nitrobenzene

Answer

Answer: (a) 4-methoxy-2-nitrobenzaldehyde
Explanation:
IUPAC name is 4-methoxy-2-nitrobenzaldehyde
MCQ On Organic Chemistry Class 11

Organic Chemistry Some Basic Principles And Techniques MCQ Question 10.
59 g of an amide obtained from a carboxylic acid, RCOOH, liberated 17 g of ammonia upon heating with alkali. The acid is
(a) Formic Acid
(b) Acetic Acid
(c) Propionic Acid
(d) Benzoic Acid

Answer

Answer: (b) Acetic Acid
Explanation:
RCOOH → RCONH2 → NH3
Since, 17g of NH3 is liberated from 59 g of acid amide, the amide has molecular mass of 59, i.e., RCONH2 = 59
R + 12 + 16 + 14 + 2 = 59
R + 44 = 59
R = 15
Hence, RisCH3 group and thus acid is CH3COOH(Acetic acid)

MCQ Questions For Class 11 Chemistry Chapter 12 Question 11.
In the Dumas method, the nitrogen present in organic compound gets converted to
(a) Sodium Cyanide
(b) Gaseoue Ammonia
(c) Dinitrogen Gas
(d) Ammonium Sulphate.

Answer

Answer: (c) Dinitrogen Gas
Explanation:
Nitrogen present in the organic compound is converted into N2 gas by heating the compound with CuO.

Ch 12 Chemistry Class 11 MCQ Question 12.
0.0833mol of carbohydrate of empirical formula CH2O contain 1 g of hydrogen. The molecular formula of the carbohydrate is
(a) C5H10O5
(b) C3H4O3
(c) C12H22O11
(d) C6H12O6

Answer

Answer: (d) C6H12O6
Explanation:
As 0.0833 mole carbohydrate has hydrogen = 1 g
Therefore, 1 mole carbohydrate has hydrogen = (\(\frac {1}{0.0833}\)) = 12 g
Empirical Formula (CH2O) has hydrogen = 2 g
Hence n = \(\frac {(12)}{(2)}\) = 6
Hence molecular formula of carbohydrate = (CH2O)6 = C6H12O6

Class 11 Chemistry Ch 12 MCQ Question 13.
The compound Class 11 Organic Chemistry MCQ is known by which of the following names
(a) Bicyclo-[2, 2, 2] octane
(b) Bicyclo-[2, 2, 1] octane
(c) Bicyclo-[1, 2, 1] octane
(d) Bicyclo-[1, 1, 1] octane

Answer

Answer: (a) Bicyclo-[2, 2, 2] octane
Explanation:
Bicyclo-[2, 2, 2] octane
MCQ Of Organic Chemistry Class 11

MCQ Of Chapter Organic Chemistry Class 11 Question 14.
Which one of the following conformations of cyclohexane is chiral?
(a) Twist boat
(b) Rigid
(c) Chair
(d) Boat

Answer

Answer: (a) Twist boat
Explanation:
The twist boat conformation of cyclohexane is optically active as it does not have any plane of symmetry.
Class 11 Chemistry Chapter 12 MCQ

Class 11 Chemistry Chapter 12 MCQ With Answers Question 15.
If 0.228 g of silver salt of dibasic acid gave a residue of 0.162 g of silver on ignition then molecular weight of the acid is
(a) 70
(b) 80
(c) 90
(d) 100

Answer

Answer: (c) 90
Explanation:
Mass of silver salt taken = 0.228 gm
Mass of silver left = 0.162 gm
Basicity of acid = 2
Step 1- To calculate the equivalent mass of the silver salt (Eq. mass of silver salt)/(Eq. mass of silver)=(Mass of Acid taken)/(Mass of silver left)
(\(\frac {E}{108}\)) = (\(\frac {0.228}{0.162}\))
E = (\(\frac {0.228}{0.162}\)) × 108 = 152(Eq. mass of silver salt)
Step 2 – To calculate the eq. mass of acid = ( Equivalent mass of acid)
= Equivalent mass of silver salt – Equivalent mass of Ag + Basicity
= 152 – 108 + 1
= 152 – 109
= 43 (Equivalent mass of acid)
Step 3- To determine the molecular mass of acid. molecular mass of the acid = Equivalent mass of acid × basicity = 45 × 2 = 90.

Question 16.
If there is no rotation of plane polarized light by a compound in a specific solvent, thought to be chiral, it may mean that
(a) The compound may be a racemic mixture
(b) The compound is certainly a chiral
(c) The compound is certainly meso
(d) There is no compound in the solvent.

Answer

Answer: (c) The compound is certainly meso
Explanation:
Meso compound does not rotate plane polarised light. Compound which contains tetrahedral atoms with four different groups but the whole molecule is a chiral, is known as meso compound. It possesses a plane of symmetry and is optically inactive. One of the asymmetric carbon atoms turns the plane of polarised light to the right and other to the left and to the same extent so that the rotation due to upper half is compensated by the lower half, i.e., internally compensated, and finally there is no rotation of plane polarised light.

Question 17.
Which element is estimated by Carius method
(a) Carbon
(b) Hydrogen
(c) Halogen
(d) Nitrogen

Answer

Answer: (c) Halogen
Explanation:
Halogen element is estimated by Carius method

Question 18.
Inductive effect involves
(a) displacement of σ electrons
(b) delocalization of π electrons
(c) delocalization of σ-electrons
(d) displacement of π-electrons

Answer

Answer: (a) displacement of σ electrons
Explanation:
During inductive effect shifting of a electrons takes place due to which partially charges are developed on the atom.
+δ” +δ′ +δ −δ
C− C− C −Cl−

Question 19.
A crystalline solid possess which one of the following property?
(a) Irregularity
(b) Non- symmetric
(c) Perfect geometric pattern
(d) non- stability

Answer

Answer: (c) Perfect geometric pattern
Explanation:
A crystalline solid is one which possesses perfect geometry, high stability, symmetric and regularly arranged.

Question 20.
Which of the following behaves both as a nucleophile and as an electrophile?
(a) CH3C ≡ N
(b) CH3OH
(c) CH2 = CHCH3
(d) CH3NH2

Answer

Answer: (a) CH3C ≡ N
Explanation:
Due to the presence of a lone pair of electrons on N, CH3C ≡ N: acts as a nucleophile. Further due to greater electronegativity of N than C, the C atom of −C ≡ N carries a positive charge and hence behaves as an electrophile.

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MCQ Questions for Class 11 Chemistry Chapter 11 The p-Block Elements with Answers

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Check the below NCERT MCQ Questions for Class 11 Chemistry Chapter 11 The p-Block Elements with Answers Pdf free download. MCQ Questions for Class 11 Chemistry with Answers were prepared based on the latest exam pattern. We have provided The p-Block Elements Class 11 Chemistry MCQs Questions with Answers to help students understand the concept very well. https://mcqquestions.guru/mcq-questions-for-class-11-chemistry-chapter-11/

The p-Block Elements Class 11 MCQs Questions with Answers

MCQ On P Block Elements Class 11 Question 1.
Red phosphorus is chemically less reactive because
(a) It does not contain P – P bonds
(b) It dos not contain tetrahedral P4 molecules
(c) It does not catch fire in air even upto 400°C
(d) It has a polymeric structure

Answer

Answer: (d) It has a polymeric structure
Explanation:
Red phosphorus is less reactive because of its gaint polymeric structure.

P Block Elements Class 11 MCQ Question 2.
Which of the following will not produce hydrogen gas?
(a) Reaction between Fe and dil. HCl
(b) Reaction between Zn and NaOH
(c) Reaction between Zn and conc. H2SO4
(d) Electrolysis of NaCl in Nelsons cell

Answer

Answer: (c) Reaction between Zn and conc. H2SO4
Explanation:
Concentrated sulphuric acid reacts with Zn to give SO2 and not H2

MCQ Of P Block Elements Class 11 Question 3.
Which of the following statement is correct?
(a) Copper (I) metaborate is colourless
(b) Copper (II) metaborate is colourless
(c) Copper (II) metaborate is light green
(d) Copper (I) metaborate is dark green

Answer

Answer: (a) Copper (I) metaborate is colourless
Explanation:
Copper (II) metaborate is bluish green and colour of Copper (I) metaborate is blue in colour.

P Block Elements Class 11 MCQ Pdf Question 4.
The structure of diBorane contains
(a) Four 2c – 2e bonds and two 3c – 2e bonds
(b) Two 2c – 2e bonds and two 3c – 2e bonds
(c) Two 2c – 2e bonds and two 3c – 3e bonds
(d) Four 2c – 2e bonds and four 3c – 2e bonds

Answer

Answer: (a) Four 2c – 2e bonds and two 3c – 2e bonds
Explanation:
According to molecular orbital theory, each of the two boron atoms is in sp³ hybrid state. Of the four hybrid orbitals, three have one electron each while the fourth is empty. Two of the four orbitals of each of the boron atom overlap with two terminal hydrogen atoms forming two normal B – H σ-bonds. One of the remaining hybrid orbital (either filled or empty) of one of the boron atoms, 1s orbital of hydrogen atoms (bridge atom) and one of hybrid orbitals of the other boron atom overlap to form a delocalised orbital covering the three nuclei with a pair of electrons. Such a bond is known as three centre two electron (3c – 2e) bonds
MCQ On P-Block Elements Class 11

MCQ On P-Block Elements Class 11 Question 5.
Which is not the correct statement for Boron?
(a) It exhibits Allotropy
(b) It exists in both crystalline and Amorphous form
(c) It forms solid chlorides
(d) It forms volatile hydrides.

Answer

Answer: (c) It forms solid chlorides
Explanation:
Boron exists in amorphous and crystalline state and exhibit allotropy.
It forms numerous volatile hydrides which spontaneously catch fire on exposure to air and are easily hydrolysed.
The chlorides of Boron is liquid, it fumes in most air and readily hydrolysed by water.

MCQ On P-Block Elements Class 11 With Answers Question 6.
Oxygen gas can be prepared from solid KMnO4 by:
(a) Dissolving the solid in dil. HCl
(b) Dissolving the solid in conc. H2SO4
(c) Treating the solid with H2 gases
(d) Strongly heating the solid

Answer

Answer: (d) Strongly heating the solid
Explanation:
Oxygen gas can be prepared from solid KMnO4
250°C
2KMnO4 → KMnO4 + MnO2 + O2

Class 11 Chemistry Chapter 11 MCQ Question 7.
In the upper layers of atmosphere ozone is formed:
(a) By action of electric discharge on oxygen molecule
(b) By action of ultraviolet rays on oxygen molecule
(c) By action of infrared rays on oxygen molecule
(d) Due to sudden drops of pressure

Answer

Answer: (b) By action of ultraviolet rays on oxygen molecule
Explanation:
In the upper layer of atmosphere, the Ultraviolet rays (UV rays) split the molecule of oxygen (O2) into its constituent 2 atoms.
Each of the atom then combine with another oxygen (O2) molecule which gives rise to Ozone (O3).

P Block Elements MCQ Class 11 Question 8.
Among the C-X bond (where, X = Cl, Br, l) the correct decreasing order of bond energy is
(a) C−I > C−Cl > C−Br
(b) C−I > C−Br > C−Cl
(c) C−Cl > C−Br > C−I
(d) C−Br > C−Cl > C−I

Answer

Answer: (c) C−Cl > C−Br > C−I
Explanation:
Among the C-X bond (where , X = Cl, Br, I), the correct decreasing order of bond energy is
C−Cl > C−Br > C−l

P-Block Elements MCQ Class 11 Question 9.
Which of the following oxidation states are most characteristic for lead and tin respectively?
(a) 2, 2
(b) 4, 2
(c) 2, 4
(d) 4, 4

Answer

Answer: (c) 2, 4
Explanation:
Due to inert pair effect, ns² electron pair of Pb does not participate in bonding. Thus, +2 is the most characteristic oxidation state for Pb. However, for Sn, the inert pair effect is not so strong Thus, +4 is the most characteristic oxidation state for Sn.

Class 11 Chemistry P Block Elements MCQ Question 10.
When excess of Kl is added to copper sulphate solution:
(a) Cuprous iodide is formed
(b) l2 is liberated
(c) Potassium iodide is oxidized
(d) All

Answer

Answer: (d) All
Explanation:
It is an redox reaction which occurs when the iodide ion will reduce the copper (II) ion to copper(I) while iodide itself is oxidized to elemental iodine. Like most copper (I) compounds, Cul is insoluble in water.
KI + 2CuSO4 (aq) → Cu2l2(s) + l2(s) + 2K2SO4(aq)

P-Block Elements Class 11 Important Questions With Answers Pdf Question 11.
Which of the following statements regarding ozone is not correct?
(a) The oxygen-oxygen bond length in ozone is identical with that of molecular oxygen
(b) The ozone is response hybrid of two structures
(c) The ozone molecule is angular in shape
(d) Ozone is used as a germicide and disinfectant for the purification of air.

Answer

Answer: (a) The oxygen-oxygen bond length in ozone is identical with that of molecular oxygen
Explanation:
The oxygen–oxygen bond length in ozone is identical with that of molecular oxygen

MCQ Questions For Class 11 Chemistry Chapter 11 Question 12.
K2[Hgl4] detect the ion/group :
(a) NH2
(b) NO
(c) NH2+
(d) Cl

Answer

Answer: (c) NH2+
Explanation:
K2[Hgl4], Nesslers reagent detects NH+4 ion.

P Block Elements Class 11 Important Questions With Answers Question 13.
Which of the following has least covalent P−H bond?
(a) PH+4
(b) P2H+5
(c) P2H2+6
(d) PH3

Answer

Answer: (c) P2H2+6
Explanation:
The covalent charter of P−H bond depends on the formal charge distributed on each P−H bond
In PH+4 it is +1/4 = +0.25, in P2H+5 it is +1/5 = +0.2 and in P2H62+ it is +2/6 = +0.33.
The higher the formal charge the lesser the covalent character due to more polarisation. Thus the least covalent P−H bond is present in P2H2+64

P Block Elements Class 11 Questions And Answers Question 14.
If Cl2 gas is passed in to aqueous solution of Kl containing some CCl4 and the mixture is shaken then:
(a) Upper layer becomes violet
(b) Lower layer becomes violet
(c) Homogenous violet layer is formed
(d) None of these

Answer

Answer: (a) Upper layer becomes violet
Explanation:
2KI + Cl2 → 2KCl l2
I2 CCl4 → Violet Colour
But the excess of Cl2 should be avoided.
The layer may become colourless due to conversion of I2 to HIO3
I2 + 5Cl2 + 6H2O → 2HIO3 + 10HCl
In case of Br2
Br2 + 2H2O + Cl2 → 2HBrO + HCl

P Block Elements Class 11 MCQ For Neet Question 15.
P Block Elements Class 11 MCQ For Neet
Which of the statement is true for the above sequence of reactions?
(a) Z is hydrogen
(b) X is B2H6
(c) Z and Y are F2 and B2H6 respectively
(d) Z is Potassium Hydroxide

Answer

Answer: (c) Z and Y are F2 and B2H6 respectively
Explanation:
F2(Z) LiH
B(s) → BF3 → B2H6 + LiBF4
(X) (Y)

Question 16.
Ammonia gas can be dried by
(a) conc H2SO4
(b) P2O5
(c) CaCl2
(d) Quick lime

Answer

Answer: (d) Quick lime
Explanation:
Ammonia, with H2SO4 forms ammonium sulphate, with CaCl2 forms CaCl2.8NH3 and with P2O5 gives NH4PO3, hence these reagents cannot be used for drying ammonia.

Question 17.
Inert gases such as helium behave like ideal gases over a wide range of temperature .However; they condense into the solid state at very low temperatures. It indicates that at very low temperature there is a
(a) Weak attractive force between the atoms
(b) Weak repulsive force between the atoms
(c) Strong attractive force between the atoms
(d) Strong repulsive attractive between the atoms

Answer

Answer: (c) Strong attractive force between the atoms
Explanation:
Inert gases condense into the solid state at very low temperature as there is strong attractive force between the atoms.
In solid state, Van der Waals attractive forces are predominant between the atoms. The attractive force increases with the size of the atom as a result of the increase in polarizability and the decrease in ionization potential.

Question 18.
In general, the Boron Trihaides act as
(a) Strong reducing agent
(b) Lewis Acids
(c) Lewis Bases
(d) Dehydrating Agents

Answer

Answer: (b) Lewis Acids
Explanation:
The boron atom in trihaldies has only six electrons in the valence shell and hence can accept a pair of electrons in the vacant p-orbital to complete its octet. As a result, boron trihaldies act as a Lewis acids.

Question 19.
On heating ozone, its volume.
(a) Increase to 1.5 times
(b) Decreases to half
(c) Remain uncharged
(d) Becomes double

Answer

Answer: (a) Increase to 1.5 times
Explanation:
O3 → O2 + [O]
1 mole of O3 on heating produces 1 mole of O2 and 1 mole of [O], hence its volume increases to 1.5 times.

Question 20.
In the compound of type ECl3, where E = B, P, As, or Bi, the angle Cl – E – Cl for different E are ion the order:
(a) B > = P = As = Bi
(b) B > P > As > Bi
(c) B < P = As = Bi
(d) B < P < As < Bi

Answer

Answer: (b) B > P > As > Bi
Explanation:
BCl3 is trigonal planar in structure and bond angles are 120° each. PCl3, AsCl3, and BiCl3 are pyramidal in shape with sp³ hybridization.

In all of them, the bond angles are less than the normal tetrahedral angle of 109.28, and also these bond angles decrease down the group. Therefore, the correct order of bond angles is as follows:
B > P > As > Bi

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