Showing posts with label Chemistry 1st year. Show all posts
Showing posts with label Chemistry 1st year. Show all posts

Tuesday, 18 October 2016

Chapter 11 REACTION KINETICS

Chemistry FSC part 1

Chapter REACTION KINETICS

11Q.1 In zero order reaction, the rate is independent of
(a)  temperature of reaction
(b) concentration of reactants
(c)  concentration of products
(d) none of above
Q.2 If the rate equation of a reaction 2A + B  Product, Rate = k [A]2 [B] and A is present in large excess then order of reaction is:
(a) 1 (b) 2
(c) 3 (d) none of these
Q.3 The rate of reaction
(a)  increases as the reaction proceeds
(b) decreases as the reaction proceeds
(c)  remains the same as the reaction proceeds
(d) may decrease or increase as the reaction proceeds
Q.4 With increases of 10 oC temperature the rate of reaction doubles. This increase in the rate of reaction is due to
(a)  decrease in activation energy of reaction
REACTION KINETICS(b) decrease in the number of collisions b/w reactants molecules
(c)  increase in activation energy of reactants
(d) increase in number of effective collisions
Q.5 The unit of the rate constant is the same as that of the rate of reaction in
(a) first order reaction (b) second order reaction
(c) zero order reaction (d) third order reaction
Q.6 The unit of reaction is
(a) mole/dm3 (b) mole/pound
(c) mole/dm3 sec (d) mole/cm3
Q.7 In the rate equation, when the conc. of reactants is unity then rate is equal to
(a) specific rate constant (b) average rate constant
(c)  instantaneous rate constant
(d) none of above
Q.8 The rate of reaction between two specific time intervals is called
(a) instantaneous rate (b) average rate
(c) specific rate (d) ordinary rate
Q.9 Instantaneous rate of a chemical reaction is
(a)  rate of reaction in the beginning
(b) rate of reaction at the end
(c)  rate of reaction at a given instant
(d) rate of reaction b/w two specific time intervals
Catalyst REACTION
Q.10 At the beginning the decrease in the conc. of reactants is
(a) slow (b) moderate
(c) rapid (d) none of above
Q.11 The sum of exponents of the conc. terms in the rate equation is called
(a) rate of reaction (b) order of reaction
(c) specific rate constant (d) average rate
Q.12 The average rate and instantaneous rate of a reaction are equal
(a) at the start (b) at the end
(c)  in the middle
(d) when two rate have time interval equal to zero
Q.13 The equation 2N2O5  2N2 has order
(a) first order (b) second order
(c) negative order (d) fractional order
Q.14 The hydrolysis of tertiary butyl has order
(a) first order (b) pseudo first order
(c) fractional order (d) zero order
Q.15 Photochemical reactions usually have order
(a) one (b) zero
(c) two (d) three
Q.16 The experimental relationship between a reaction rate and the concentration of reactants is called
(a) order of reaction (b) specific rate
(c) law of mass action (d) rate law
Q.17 When the rate of reaction is entirely independent of the conc. of reactants molecule then order of reaction is (a) zero (b) first
(c) second (d) third
Q.18 Half life of U is
(a) 7.1 x 108 years (b) 6.1 x 108 years
(c) 8.1 x 107 years (d) 7.1 x 1010 years
Q.19 Half life period for decomposition of N2O5 at 45 oC is
(a) 24 minutes (b) 34 minutes
(c) 44 minutes (d) 54 minutes
Q.20 The decomposition of ozone has order
(a) first (b) negative
(c) second (d) pseudo first order
Q.21 The equation CHCl3 + Cl2  CCl4 + HCl has order
(a) first (b) negative
(c) fractional (d) second
Q.22 When a reaction occurs in many steps then the slowest step is the
(a)  main step
(b) enthalpy determining step
(c)  mechanism determining step
(d) rate determining step
Q.23 Spectrometry applied for rate determination when
(a)  reactants or product absorb U.V., I.R. light
(b) reaction involve ion
(c)  reaction involve change in volume
(d) none of above
Q.24 Electrical conductivity method is applied for rate determination when
(a)  reactants and products involve absorption of U.V. or I.R. radiation
(b) reaction involving ions
(c)  reaction which involve change in refractive indices
(d) reactions which involve small volume change
REACTION KINETICS 
Q.25 Dilatometric method is used for rate determination when
(a)  reactions involving ions
(b) reactions involving change of optical activity
(c)  reaction involving small volume change
(d) none of above
Q.26 Refractrometric method is used when
(a)  reactions involving absorption of I.R. or U.V.
(b) reactions involving change of refractive index
(c)  reactions involving ions
(d) change of optical activity
Q.27 Optical rotation method is used when
(a)  reaction involve ions
(b) change of refractive indices
(c)  reactions involving change of optical activity
(d) none of above
Q.28 The substance which retard the rate of chemical reaction
(a) catalyst (b) inhibitor
(c) auto catalyst (d) enzyme
Q.29 The enzyme used in the hydrolysis of urea is
(a) urease (b) amylase
(c) oxidase (d) reductase
Q.30 In the hydrolysis of CH3COO2H5 the acid produce act as
(a) inhibitor (b) catalyst
(c) auto catalyst (d) none of above
Q.31 The order of reaction can be determined by
(a) graphical method (b) method of hit and trial
(c) differential method (d) all of above
Q.32 The factors which affect rate of reaction
(a) nature of reactants (b) surface area
(c) light (d) all of above
Q.33 When temp of reacting gases is raised to 10 K, the reaction rate becomes
(a) remain same (b) double
(c) triple (d) increase four times
Q.34 Arrhenius equation describe the effect of
(a)  temp on rate of reaction
(b) volume on rate of reaction
(c)  pressure on rate of reaction
(d) all the above
Q.35 A substance which alters the rate of reaction
(a) inhibitor (b) catalyst
(c) promoter (d) auto catalyst
REACTION KINETICS
Q.36 Homogeneous catalysis when
(a)  reactants and catalyst have same phase
(b) products and catalyst have same phase
(c)  reactant and products have same phase
(d) none of above
Q.37 The heterogenous catalysis
(a)  reactants and products have different phases
(b) reactants and catalyst have different phases
(c)  products and catalyst have different phases
(d) all the above
Q.38 Tetra ethyl lead when added to petrol, acts as
(a) negative catalyst (b) auto catalyst
(c) promoter (d) catalyst
Q.39 Concentrated sugar solution undergoes hydrolysis by an enzyme
(a) invertase (b) urease
(c) zymase (d) glucase
Q.40 Glucose is converted into ethanol by an enzyme
(a) urease (b) invertase

(c) zymase (d) glucose 
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Monday, 17 October 2016

Chapter 10 ELECTROCHEMISTRY

ELECTROCHEMISTRY  Test

Q.1 Electrolysis is the process in which a chemical reaction takes place at the expense of
(a) chemical energy (b) electrical energy
(c) heat energy (d) none of these
Q.2 Standard hydrogen electrode has an arbitrarily fixed potential
(a) 0.00 volt (b) 1.00 volt
(c) 0.10 volt (d) none of these
Chapter 10 
Q.3 The oxidation number of chromium in K2Cr2O7 is
(a) 14 (b) 12
(c) 6 (d) none of these
Q.4 In the reaction 2 Fe + Cl2 ( 2FeCl3
(a) Fe is reduced (b) Fe is oxidized
(c) Cl2 is oxidized (d) none of these
Q.5 When fused PbBr2 is electrolyzed
(a)  bromine appears at cathode
(b) lead is deposited at the cathode
(c)  lead appears at the anode
(d) none of these happens
Q.6 When aqueous solution of NaCl is electrolysed
(a)  Cl2 is evolved at the cathode
(b) H2 is evolved at cathode
(c)  Na is deposited at the cathode
(d) Na appears at the anode
Q.7 During electrolysis of KNO3, H2 is evolved at
(a) anode (b) cathode
(c) both (a) and (b) (d) none of these
Q.8 During electrolysis of CuSO4 (aq) using Cu electrodes Cu is deposited at
(a) anode (b) cathode
(c) both (a) and (b) (d) none of these
Q.9 During electrolysis of fused NaCl, which of the following reaction occurs at anode
(a) Cl– ions oxidized (b) Cl– ions reduced
(c) Na+ ions oxidized (d) Na+ ions reduced
ELECTROCHEMISTRY 
Q.10 An electrochemical cell is based upon
(a) acid–base reaction (b) redox reaction
(c) nuclear reaction (d) none of the above
Q.11 Which one of the following will be good conductor of electricity
(a) pure distilled water (b) molten NaCl
(c)  dilute solution of glucose
(d) chloroform
Q.12 Which one of the following represents the same net reaction as the electrolysis of aqueous
H2SO4
(a)  electrolysis of water
(b) electrolysis of molten NaCl
(c)  electrolysis of aqueous HCl
(d) electrolysis of aqueous NaCl
Q.13 In a galvanic cell, the reaction occurs
2H2O ( O2 (g) + 4H+ + 4e– It occurs at the
(a) cathode (b) anode
(c) cathode and anode (d) none of the above
Q.14 Which statement below is not true for the reaction
Fe3+ + e– ( Fe2+
(a)  Fe3+ is reduced
(b) oxidation state of Fe has changed
(c)  Fe3+ can act as an oxidizing agent
(d) both Fe2+ and Fe3+ are called anions
ELECTROCHEMISTRY
Q.15 During a redox reaction, an oxidizing agent
(a) gains electrons (b) is oxidized
(c) loses electrons (d) is hydrolysed
Q.16 In a salt bridge KCl is used because
(a)  it is an electrolyte
(b) K+ and Cl– transfer easily
(c)  agar–agar forms a good jelly with it
(d) KCl is also present in the calomel electrode
Q.17 A oxidizing agent is a substance which brings about
(a) electron donation (b) oxidation
(c) reduction (d) hydrolysis
Q.18 In the electrolysis the process of oxidation occurs at
(a) anode (b) cathode
(c)  both cathode and anode
(d) in electrolytic solution
Q.19 In an oxidation process the oxidation number of the element
(a) increases (b) decreases
(c) does not change (d)
Q.20 In the reduction process the oxidation number of the element
(a) increases (b) decreases
(c) does not change (d)
Q.21 Oxidation number of oxygen in OF2 is
(a) + 1 (b) – 1
(c) + 2 (d) – 2
Q.22 The e.m.f. of Zn – Cu cell is
(a) 1.10 v (b) 1.5 v
(c) 2.0 v (d) 2.5 v
Q.23 The standard reduction potential of a standard hydrogen electrode
(a) 0.0 v (b) 1.1 v
(c) 1.5 v (d) 2.0 v
Q.24 The oxidation number of Mn is K2 MnO4 is
(a) + 2 (b) + 4
(c) + 6 (d) + 7
Q.25 Which of the following is the definition of oxidation
(a) gain of electrons (b) loss of electrons
(c) addition of H2 (d) removal of O2
Q.26 During electrolysis of H2SO4 (aq) O2 is evolved at
(a) cathode (b) anode
(c) both a and b (d) none of these
Q.27 The e.m.f. produced by a voltage cell is
(a) electrode potential (b) reduction potential
(c) cell potential (d) oxidation potential
Q.28 Which of the following is not a redox reaction
(a)  CaCO3 ( CaO + CO2
(b) Cu + 4HNO3 ( Cu(NO3)2 + 2NO2 + H2O
(c)  2H2 + O2 ( 2H2O
(d) MnO2 + 4HCl ( MnCl2 + Cl2 + 2H2O
ELECTROCHEMISTRY
Q.29 Which element acts as a reducing agent in the reaction
Zn + H2SO4 ( ZnSO4 + H2
(a) Zn (b) H
(c) S (d) O
Q.30 Which element acts as a oxidizing agent in the reaction
MnO2 + 4HCl ( MnCl2 + Cl2 + 2H2O
(a) Mn (b) O
(c) H (d) Cl
Q.31 When the current is passed through an electrolytic solution, which of the following process will occur
(a)  anions move towards anode and cations move towards cathode
(b) cations and anions both move towards anode
(c)  cations and anions both move towards anode
(d) no movement of the ions occur
Q.32 Electric current passes through both molten and solution form of NaCl because of
(a) ionic bonding (b) Na+ and Cl– ions
(c) ions of water (d) hydration of ions
Q.33 A cell which produces electric current by redox reaction is called
(a) standard cell (b) voltaic cell
(c) reversible cell (d) concentration cell
Q.34 Which of the following conduct electricity due to the migration of electrons only
(a) copper metal (b) NaCl molten
(c) NaCl (d) NaCl solution
Q.35 Oxidation number of sulphur in S2O eq \a\co1(2–,3 ) is
(a) + 6 (b) – 2
(c) + 2 (d) + 4
Q.36 Substances through which electric current can pass are called
(a) insulators (b) conductors
(c) cathode (d) anode
Q.37 Substances through which electric current cannot pass are called
(a) insulators (b) conductors
(c) anode (d) cathode
Q.38 Metallic conduction is due to the
(a)  movement of electrons
(b) movement of ions
(c)  both (a) and (b)
(d) none of these
Q.39 Metallic conductors conduct electricity
(a)  with chemical change
(b) without any chemical change
(c)  both (a) and (b)
(d) none of these
Q.40 The flow of electrons is called
(a) electrolyte (b) electric current
(c) cathode (d) anode
Q.41 A substance which in molten state or in solution form allows electric current to pass through it is called
(a) electrolyte (b) insulator
(c) conduction (d) none of these
Q.42 The process in which electric current is used to carry out a non–spontaneous redox reaction is called
(a) electrolyte (b) electrolysis
(c) metallic conductor (d) electrodes
Q.43 In electrochemical cells, the electrode at which the reduction occurs is called
(a) anode (b) cathode
(c) electrolyte (d) electrolysis
Q.44 The process of producing a chemical change in an electrolytic cell is called
(a) electrolyte (b) electrolysis
(c) electrodes (d) conductor
Q.45 The process in which ionic compound when fused or dissolved in water split up into charged particles is called
(a) electrolysis (b) hydration (c) ionization (d) conduction
ELECTROCHEMISTRY 
Q.46 An apparatus in which chemical energy in converted to electrical energy is called
(a) electrolytic cell (b) galvanic cell
(c) fuel cell (d) down cell
Q.47 The metallic conductors in contact with the solution are called
(a) insulator (b) electrodes
(c) electrolyte (d) down cell
Q.48 The reaction in a galvanic cell is
(a) spontaneous (b) non–spontaneous
(c) acid–base (d) none of these
Q.49 Caustic soda is obtained by electrolysis of conc. aqueous solution of NaCl in a cell called
(a) Daniell’s cell (b) Nelson’s cell
(c) Down’s cell (d) Voltaic cell
Q.50 Sodium metal is obtained by the electrolysis of fused NaCl in a cell is called
(a) Nelson’s cell (b) Down’s cell
(c) Daniell cell (d) Voltaic cell
Q.51 The e.m.f. of Daniell cell can be increased by
(a)  increasing the area of electrode
(b) increasing the concentration of oxidising ion in the solution
(c)  increasing the concentration of reducing ion in the solution
(d) adding the dil H2SO4
Q.52 Metal and their ionic salts both conduct electricity. Which of the following statement is not correct both
(a)  are good conductors normally
(b) are ionic in nature
(c)  decompose on passing current
(d) are normally solid
Q.53 The branch of chemistry which deals with the relationships between electricity and chemical reaction is called
(a) chemical kinetics (b) electrochemistry
(c) stiochiometry (d) thermochemistry
Q.54 A system containing of electrodes that dips into an electrolyte in which a chemical reaction either uses or generates an electric current is called
(a) voltaic cell (b) electrochemical cell
(c) voltaic or galvanic cell (d) fuel cell
Q.55 A cell in which spontaneous redox reaction generates an electric current is called
(a)  electrolytic cell
(b) electrochemical cell
(c)  voltaic orgalvanic cell
(d) biological cell
Q.56 A cell in which an electric current drives a non–spontaneous reaction is called
(a) electrolytic cell (b) voltaic cell
(c) biological cell (d) electrochemical cell
Q.57 A process for converting one metal with a thin layer of another metal is called
(a) electrolysis (b) electroplating
(c) electrode potential (d) standard electrode
Q.58 In an electrical connection between cathode and anode of a voltaic cell, electrons flow from the
(a) anode to the cathode (b) cathode to the anode
(c) both (a) and (b) (d) none of these
Q.59 Greater the value of standard reduction potential of a species indicates
(a)  greater its tendency to accepted electrons
(b) lesser tendency to accept electrons
(c)  greater tendency to lose electrons
(d) none of these
Q.60 In lead accumulator the electrolyte H2SO4 solution is
(a) 30 % (b) 60% H2SO4
(c) 80% (d) 90%
Q.61 In alkaline battery, the electrolyte contains
(a) MnO2 (b) KOH
(c) NaCl (d) NaNO3
Q.62 Alkali metals have
(a)  lower value of reduction potential than coinage metals
(b) higher value of reduction potential than coinage metals
(c)  equal values of reduction potential to coinage metals
(d) none of these
Q.63 Strong reducing agents have
(a)  greater positive value of standard reduction potential
(b) greater negative value of standard reduction potential
(c)  lesser positive value of standard reduction potential
(d) none of these
Q.64 Strong oxidizing agents have
(a)  greater positive value of standard reduction potential
(b) lesser positive value of standard reduction potential
(c)  greater negative value of standard reduction potential
(d) none of these
Q.65 The electrode with more negative value of reduction potential acts as
(a) cathode (b) anode
(c) electrode (d) none of these
Q.66 Metals which are above SHE in electrochemical series
(a)  can liberate H2 from acid
(b) cannot liberate H2 from acid
(c)  cannot always liberate H2 from acid
(c) none of these
Q.67 Corrosion reactions are
(a)  spontaneous redox reactions
(b) non–spontaneous redox reactions
(c)  spontaneous acid–base reactions
(d) none of these
Q.68 Voltaic cell can be changed into
(a) electrochemical cell (b) electrolytic cell
(c) reversible cell (d) primary cell
Q.69 Strongest oxidizing agent in the electrochemical series is
(a) Li (b) F
(c) H2 (d) I2
Q.70 Strongest reducing agent in the electrochemical series is
(a) Li (b) F
(c) H2 (d) I2
Q.71 Fuel cells are the means by which chemical energy may be converted into
(a) heat energy (b) electrical energy
(c) mechanical energy (d) sound energy 


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Sunday, 16 October 2016

Chapter 9 SOLUTIONS

FSC part 1 Chemistry Test

Chapter=Solutions
Q.1 Which of the following solutions has the highest boiling point?
(a)  5.85% solution of NaCl
(b) 18.0% solution of glucose
(c)  6.0% solution of urea
(d) all have same boiling point
Q.2 Two solutions of NaCl and KCl are prepared separately by dissolving same amount of the solute in water. Which of the following statements is true for these solutions
(a)  KCl solution will have higher boiling point than NaCl solution
(b) both the solutions have same boiling point
(c)  KCl and NaCl solutions possess same vapour pressure
Q.3 Molarity of pure water is
(a) 1 (b) 18
(c) 55.5 (d) 6
Q.4 18 gm glucose is dissolved in 90 gm of water. The relative lowering of vapour pressure is equal to
(a) (b) 5.1
(c) (d) 6
Q.5 The molar boiling point constant is the ratio of the elevation in boiling point to
(a) molarity (b) molality
(c) mole fraction of solvent (d) less than that of water
Q.6 An aqueous solution of methanol in water has vapour pressure
(a) equal to that of water (b) equation to that of methanol
(c) more than that of water (d) less than that of water
Q.7 An ozeotropic mixture of two liquids boils at a lower temperature than either of them when
(a)  it is saturated
(b) it shows positive deviation from Raoult’s law
(c)  it shows negative deviation from Raoult’s law
(d) it is metastable
Q.8 In azeotropic mixture showing positive deviation from Raoult’s law, the volume of mixture is
(a)  slightly more than the total volume of components
(b) slightly less than the total volume of the component
(c)  equal to the total volume of the components
(d) none of these
Q.9 A solution of glucose is 10%. The volume in which 1 gm mole of it is dissolved will be
(a) 1 dm3 (b) 1.8 dm3
(c) 200 cm3 (d) 900 cm3
Q.10 Colligative properties are the properties of
(a)  dilute solutions which behave as nearly ideal solutions
(b) concentrated solutions which behave as nearly non–ideal solutions
(c)  both (i) and (ii) (d) neither (i) nor (ii)
Q.11 The freezing mixture used in ice cream machine consists of ice and
(a) NaCl (b) CaCl2
(c) KNO3 (d) both a & c
Q.12 1 kg of sea water contains 4.96 x 10–3 gm of dissolved oxygen. The concentration of oxygen in sea water in ppm is
(a) 4.96 x 10–2 (b) 0.496
(c) 4.96 (d) 49.6
Q.13 A solution of sucrose is 34.2%. The volume of solution containing one mole of solute
(a) 500 cm3 (b) 1000 cm3
(c) 342 cm3 (d) 3420 cm3
Q.14 Salt of a weak acid with strong base when dissolved in water gives
(a) acidic solution (b) basic solution
(c) neutral solution (d) none
Q.15 Mole fraction of 10% urea is
(a) 0.042 (b) 0.023
(c) 0.032 (d) 0.072
Q.16 Which of the following mixtures of liquids show negative deviation
(a) ethyl alcohol ether (b) HCl and water
(c)  phenol – water
(d) chlorobenzene – bromobenzene
Q.17 The term cryoscopy is used
(a) depression of freezing point (b) elevation in boiling point
(c)  lowering of vapour pressure
(d) osmotic pressure
Q.18 The term ebullioscopy is used
(a)  depression of freezing point
(b) elevation in boiling point
(c)  lower of vapour pressure
(d) none of above
Q.19 Azeotropic mixture
(a)  obey Henry’s law
(b) obey Raoult’s law
(c)  do not obey Raoult’s law
(d) obey Dalton’s law
Q.20 Hydrolysis of potassium acetate produce
(a) acidic solution (b) neutral solution
(c) basic solution (d) none of these
Q.21 Which one of the following salts will not hydrolyse
(a) NaCl (b) AlCl3
(c) Na2CO3 (d) CH3COONa
Q.22 The sum of mole fractions (X) of components of a solution is equal to
(a) 100 (b) 200
(c) one (d) zero
Q.23 Which pair of mixture is called idea solution
(a)  nicotine–water
(b) chlorobenzene & bromobenzene
(c)  water–ether
(d) water–alcohol
Q.24 The vapour pressure of aqueous solution of sugar solution is
(a)  equal to vapour pressure of water
(b) more than vapour pressure of pure water
(c)  less than vapour pressure of pure water
(d) none of above
Q.25 When NaCl is dissolved in water
(a)  melting point decrease
(b) boiling point decrease
(c)  both melting and boiling point decrease
(d) none of above
Q.26 The solution which distils without change in composition is called
(a) unsaturated solution (b) saturated solution
(c) zeotropic mixture (d) azeotropic mixture
Q.27 Solubility curve of Na2SO4 10 . H2O shows
(a)  constant increase of solubility
(b) constant decrease of solubility
(c)  discontinuous solubility with temp
(d) none of above
Q.28 Use of glycol as antifreeze in the automobile is an important application of
(a)  colligative property
(b) Roault’s law
(c)  fractional crystallization
(d) hydrolysis
Q.29 Use of NaCl in ice cream making is an important application of
(a)  constitutive property
(b) additive property
(c)  colligative property
(d) Roault’s law
Q.30 Which one of the following solutions will have higher vapour pressure than that of water
(a)  aqueous solution of CH3OH
(b) aqueous solution of H2SO4
(c)  aqueous solution of sugar
(d) aqueous solution of urea
Q.31 Ethylene glycol is mixed with water as anti freeze in radiator because
(a)  it has low vapour pressure
(b) it raises the boiling point of water
(c)  it lowers the freezing point of water
(d) it changes osmotic pressure
(e) it has all characters
Q.32 Which one of following is not soluble in alcohol
(a) KCl (b) urea
(c) acetone (d) ether
Q.33 Mixture of alcohol and water can be separated by
(a) solvent extraction (b) crystallization
(c) filtration (d) fractional distillation
Q.34 Which one of following is not a conjugate solution
(a) ether + water (b) phenol + water
(c) nicotine + water (d) ethanol + water
Q.35 Which one of the following has discontinuous solubility curve
(a) NaCl (b) KCl
(c) NaNO3 (d) CaCl2 . 6H2O
Q.36 Which one of following has continuous solubility curve
(a) NaCl (b) NaNO3
(c) Na2SO4 . 10H2O (d) both a and b
Q.37 Solubility of following decrease with increase in temp
(a) Ce2(SO4)3 (b) CaCl2 . 6H2O
(c) Pb(NO3)2 (d) K2Cr2O7
Q.38 According to Roault’s law
(a) relative lowering of V.P. is equal to mole fraction of solute
(b) the lowering of V.P. is directly proportional to the mole fraction of solute (c) V.P. of a solvent above a solution is equal to product of V.P. of pure solvent and mole fraction of solvent in solution
(d) all the above
Q.39 The solution of KCl (a) acidic (b) basic
(c) neutral (d) none of above
Q.40 Na2SO4 solution is
(a) acidic (b) basic
(c) neutral (d) none of above
Q.41 The solution of CuSO4 is
(a) acidic (b) basic
(c) neutral (d) none of above
Q.42 The solution of AlCl3 is (a) acidic (b) basic
(c) neutral (d) none of above
Q.43 The solution of CH3COONa
(a) acidic (b) basic
(c) neutral (d) none of above
Q.44 The no. of water of crystallization of MgCl2
(a) 12 (b) 6
(c) 3 (d) 4
Q.45 The no. of water of crystallization of MgSO4
(a) 12 (b) 7
(c) 5 (d) 3
Q.46 Freezing point depression is measured by
(a)  Beckmann’s apparatus
(b) Land’s Berger’s
(c)  Antifreeze apparatus
(d) all the above
Q.47 Elevation of boiling is measured by
(a)  Beckmann’s apparatus
(b) Lands berger’s method
(c)  Antifreeze apparatus
(d) none of above
Q.48 Colligative properties are the properties of solution that depends upon
(a) nature of molecules (b) quality
(c) physical property (d) no. of molecules
Q.49 Aqueous solution of glucose boils at 100.52oC. The solution contains
(a)  180 gm glucose in 1 litre water
(b) 90 gm glucose in 1 litre water
(c)  18 gm glucose in 1 litre water
(d) 3.6 gm glucose in 1 litre water
Q.50 Aqueous solution of methanol is zeotropic mixture because
(a)  it does not obey the Roalt’s law
(b) mixture cannot be separated by sublimate
(c)  mixture can be separated by distillation
greater volume than the volume of component 
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