Author Topic: ALL CIE CHEMISTRY DOUBTS HERE !!  (Read 122956 times)

Offline Deadly_king

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Re: ALL CIE CHEMISTRY DOUBTS HERE !!
« Reply #195 on: November 13, 2010, 12:00:02 pm »
I have attached June 2001 as well as November 2001.It seems that these exams are difficult to find so i thought these might help you practice more questions. Best wishes ;) :)

Thank you very much for thinking about us dude. :D

Really appreciated. :)

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Offline moon

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Re: ALL CIE CHEMISTRY DOUBTS HERE !!
« Reply #196 on: November 13, 2010, 12:04:33 pm »
Anytime ... ;)

Offline moon

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Re: ALL CIE CHEMISTRY DOUBTS HERE !!
« Reply #197 on: November 13, 2010, 04:12:14 pm »
here are the markskemes for june & Nov.2001 ;)

Offline moon

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Re: ALL CIE CHEMISTRY DOUBTS HERE !!
« Reply #198 on: November 13, 2010, 04:25:56 pm »
pls I need help in Nov.06 Q9, 11 12 31, 32.
June 01 Q6,11,37
thanks for ur help. :) :)
« Last Edit: November 13, 2010, 08:31:04 pm by moon »

Offline Hypernova

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Re: ALL CIE CHEMISTRY DOUBTS HERE !!
« Reply #199 on: November 13, 2010, 10:16:13 pm »
plzzzzzzzzz help me in these questions. :-[ :-[June 07 Q 1, 9
                        
                        June 01 Q6,11,37
                      
                        June 2002 Q 38

I would really apreciate any help. thanx a lot. :)

Was waiting for the marking scheme..i don't post untill im 100% sure

June 01 Q6

See the attached file

Using Hess's law, the enthalpy change of a reaction is the same, irrespective of the route taken

So we choose the route I drew.
If we move in the direction of the reaction we add the enthalpy change, if we move in the opposite direction to the reaction, we subract the enthalpy change, so
the equation looks like this

 -109 - -111 + -395

=-393 KJ/mol

Ans is C

11)

Its a basice math question that tests your ability to read of the graph.

They want the fraction of molecules higher than the activation energy

That is: the total number of molecules above Ea
                total number of molecules

so the total number of molecules above Ea is reprisented by the areas shaded R and Q
and
total number of molecules is represented by the areas shaded P and Q

which is: Q + R
           P + Q




37)

Can't do it, its got something to do with oxinumbers

thanks for the papers
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« Last Edit: November 13, 2010, 10:47:24 pm by Hypernova »
Ya Allah! Make useful for me what You taught me and teach me knowledge that will be useful to me.

Offline Deadly_king

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Re: ALL CIE CHEMISTRY DOUBTS HERE !!
« Reply #200 on: November 14, 2010, 08:04:25 am »
pls I need help in Nov.06 Q9, 11 12 31, 32.
thanks for ur help. :) :)

Nov 06 p1

9. Reaction : CO2(g) + H2(g) -----> CO(g) + H2O(g)

So we are converting CO2 to CO while H2 is being oxidised to H2O. However both H2 and H2O are in gaseous state. ;)

Conversion of CO to CO2 is given as -283 KJmol-1. Since we're converting CO2 to CO, it will be +283 KJmol-1.

Converting H2 to water in liquid is given -286 KJmol-1. But we have to convert it back to gaseous state, hence net energy will be (-286 + 44) = -242 KJmol-1

Hence Change in enthalpy of reaction : (+283 - 242) = +41 KJmol-1

Answer turns out to be C

11. For the reaction Kc = [CH3CO2C2H5][H2O] / [C2H5OH][CH3CO2H]

Since from the reaction mole ratio is 1:1 for every reactant and products, it becomes easier.

                    [C2H5OH]        [CH3CO2H]      [CH3CO2C2H5]      [H2O]
Initially              1.0                1.0                 0.0                 0.0

At equilibrium      1-x             1-x                 x                   x  

Therefore Kc = (x)(x) / (1-x)(1-x) = 4
It also implies [x/(1-x)]2 = 4

Now you simplify and you'll get x = 2/3
Hence number of moles of ethyl ethanoate formed is 2/3

Answer is B

12. At low temperature, less molecules will have have reached activation energy to undergo the reaction. Hence the graph with lower peak is to be used.

Energy of such a graph is found on the x-axis. ;)

Hence answer is D

31. The chlorine oxide radical is ClO..

It is made up of a covalent bond between the Cl and O atom. Since the oxygen atom carries only one bond, it has one more free electron available for bonding.

Hence the oxygen atom contains an odd number of electrons. However no dative bond is present in this molecule.

Hence answer is B

32. Strong acid imply that it dissociates rapidly to form the corresponding ions while a weak acid does not dissociate much.

Hence sulfuric acid is a strong one which implies it will form much H+ and HSO4-. The latter being a weak acid will not dissociate much such that SO4- will only be present in minimal amount. ;)

Answer is D.



« Last Edit: November 14, 2010, 08:45:33 am by Deadly_king »

Offline haris94

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Re: ALL CIE CHEMISTRY DOUBTS HERE !!
« Reply #201 on: November 14, 2010, 02:14:50 pm »
state 2 reasons why noble gases behave less ideally as you go down the group 8?

pls explain
thanx
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Offline Deadly_king

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Re: ALL CIE CHEMISTRY DOUBTS HERE !!
« Reply #202 on: November 14, 2010, 03:01:40 pm »
state 2 reasons why noble gases behave less ideally as you go down the group 8?

pls explain
thanx

1. As you go down the group, the atoms increase in size such that their volume become large enough. Hence their volume are no more negligible. ;)

2. As you go down the group the atoms of the noble gases become larger due to increase in number of shells. Hence the outermost electron is further away from the nucleus. Therefore the force of attraction decreases such that it is easier to remove an electron from it. It becomes less stable and it is easier to form attraction.

Quote from: http://www.glencove.k12.ny.us/highschool/ChemRev/ChemRev.html
Ideal gases [How gases should behave but don’t]-

   1. No attraction between molecules/atoms
   2. Molecules have a negligible volume
   3. Collisions are elastic
   4. Particle movement is random

Real gases VERY RARELY BEHAVE LIKE IDEAL GASES since

         1. There IS an attraction between particle (van der Waals)
         2. The volume of particles are NOT negligible, esp. at low temps & high-pressure since atoms/molecules are close together

***HYDROGEN and HELIUM are the most IDEAL gases.*** Also, Diatomic molecules and nonsymmetrical molecules & noble gases act the most ideal. THE SMALLER THEY ARE THE MORE IDEAL THEY BEHAVE.

Hope it help :)

Offline birchy33

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Re: ALL CIE CHEMISTRY DOUBTS HERE !!
« Reply #203 on: November 15, 2010, 09:48:55 am »
10. At a total pressure of 1.0 atm, dinitrogen tetraoxide is 50% dissociated at a temperature of 60 C,
according to the following equation.
 
N2O4  2NO2
 
What is the value of the equilibrium constant, Kp, for this reaction at 60oC?
 
 A 1/3 atm
 B 2/3 atm
 C 4/3 atm
 D 2 atm

Please explain. Its from MJ/06 P1 thank-you. Oh and please can you held with 18 and 20 from the same exam.
« Last Edit: November 15, 2010, 09:59:41 am by birchy33 »

Offline moon

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Re: ALL CIE CHEMISTRY DOUBTS HERE !!
« Reply #204 on: November 15, 2010, 01:16:31 pm »
pls can u help in Nov.08 Q3,30,39 and Nov. 09 Varient 1 Q5,21,22,28,29,31. Thanx in advance.

Offline Master_Key

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Re: ALL CIE CHEMISTRY DOUBTS HERE !!
« Reply #205 on: November 15, 2010, 01:28:35 pm »
Nov 08
Q3 - Ans:- D

One electron in S orbital means that it is in S-block of periodic table but the first group.

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Re: ALL CIE CHEMISTRY DOUBTS HERE !!
« Reply #206 on: November 15, 2010, 01:32:27 pm »
Nov. 09 Variant 1

Question 5

A and D are eliminated as they are symmetrical and hence have no overall dipole moments.

In C Chlorine is very electronegative and hence tugs hard at the electrons. Oxygen which is even more electronegative tugs even harder so the net dipole moment is very small.

 In B we see that hydrogen can offer little resistance to the effect of the highly electronegative oxygen causing a large dipole moment in the direction of oxygen

Ans = b

Offline Deadly_king

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Re: ALL CIE CHEMISTRY DOUBTS HERE !!
« Reply #207 on: November 15, 2010, 02:21:38 pm »
pls can u help in Nov.08 Q3,30,39

Nov 08 p1

30. First you need to use the mass of the respective molecules given to find the number of moles of each.

No of moles = Mass / Mr

No of moles of ethanol : 30/46 = 0.652
No of moles of ethanoic acid : 30/60 = 0.50
Ratio of moles of ethanol to ethanoic acid was supposed to be 1:1. Hence we can deduce that ethanol is in excess. Only 0.5 mole of each reactant will react.

No of moles of ethyl ethanoate : 22/88 = 0.25.
Hence it can be noted that only 0.25 mole of ester is formed when 0.5 mole of reactants react together.

% Yield is therefore : 0.25/0.5 x 100 = 50%

Answer is C

39. From the information given above, you can note that for methane which contains only one carbon atom, ethane with two carbon atoms can be obtained as product. In other words the number of carbon atoms double.

So for propane which contains 3 carbon atoms, the resulting product may contain maximum 6 carbon atoms.

Hence we can reject the last suggestion leaving us with only 1 and 2 as potential answers.

Answer is B
« Last Edit: November 15, 2010, 03:05:32 pm by Deadly_king »

Offline Deadly_king

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Re: ALL CIE CHEMISTRY DOUBTS HERE !!
« Reply #208 on: November 15, 2010, 04:04:43 pm »
10. At a total pressure of 1.0 atm, dinitrogen tetraoxide is 50% dissociated at a temperature of 60 C,
according to the following equation.
 
N2O4  2NO2
 
What is the value of the equilibrium constant, Kp, for this reaction at 60oC?
 
 A 1/3 atm
 B 2/3 atm
 C 4/3 atm
 D 2 atm

Please explain. Its from MJ/06 P1 thank-you. Oh and please can you held with 18 and 20 from the same exam.

Jun 06 p1

10. Kp = [P(NO2)]2 / P(N2O4)

At equilibrium, pressure of N2O4 is x while that of NO2 is 2x. Since total pressure is given to be 1.0 atm, this implies that x + 2x = 1.0

Therefore x = 1/3, i.e pressure of N2O4 is 1/3 while that of NO2 is 2/3.

Kp = (2/3)2 / (1/3) = 4/3

Answer is C.

18. C is the most appropriate solution since it is cheaper and the reaction is not exothermic.

20. First reaction is removal of hydrogen atom, i.e oxidation of an alcohol to an aldehyde.


Second reaction is a nucleophilic reaction as an aldehyde is made to react with an alcohol to form a ketone.

Third reaction is again oxidation.

Answer is C.

Offline birchy33

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Re: ALL CIE CHEMISTRY DOUBTS HERE !!
« Reply #209 on: November 15, 2010, 11:30:56 pm »
Jun 06 p1

10. Kp = [P(NO2)]2 / P(N2O4)

At equilibrium, pressure of N2O4 is x while that of NO2 is 2x. Since total pressure is given to be 1.0 atm, this implies that x + 2x = 1.0

Therefore x = 1/3, i.e pressure of N2O4 is 1/3 while that of NO2 is 2/3.

Kp = (2/3)2 / (1/3) = 4/3


Answer is C.

18. C is the most appropriate solution since it is cheaper and the reaction is not exothermic.

20. First reaction is removal of hydrogen atom, i.e oxidation of an alcohol to an aldehyde.


Second reaction is a nucleophilic reaction as an aldehyde is made to react with an alcohol to form a ketone.

Third reaction is again oxidation.

Answer is C.

Cheers mate, I'm just a bit unsure about the 2x + x = 1 bit. Secondly There's another equilibrium question: Question 9 from MJ/07. Your help would be much appreciated. Cheers + rep.
« Last Edit: November 16, 2010, 11:55:06 am by Deadly_king »