Chemistry: Post your doubts here!

Mohammed salik · Apr 26, 2014

ZaqZainab said:
Thanks again and what about 36th?

Welcome!!

princeali97 · Apr 26, 2014

q2(D)....http://papers.xtremepapers.com/CIE/... AS Level/Chemistry (9701)/9701_s10_qp_21.pdf

salvatore · Apr 26, 2014

http://papers.xtremepapers.com/CIE/... AS Level/Chemistry (9701)/9701_w12_qp_43.pdf
qn no. 7(iii)
I never understand how to solve the NMR questions. Could anyone please do me a favour by explaining the solution to this question?
I'm desperately in need of your help

princeali97 · Apr 26, 2014

q3(c)(iii).

..http://papers.xtremepapers.com/CIE/... AS Level/Chemistry (9701)/9701_s10_qp_21.pdf

ZaqZainab · Apr 26, 2014

princeali97 said:
q3(c)(iii)...http://papers.xtremepapers.com/CIE/Cambridge International A and AS Level/Chemistry (9701)/9701_s10_qp_21.pdf

the marking scheme says it all
something like this
sorry coundnt do an exact drawing but i guess will now understand what the ms says

Nisa Mirza · Apr 26, 2014

Well i guess its cause Cl^- is smaller than I^-
So fitting 7 atoms of F around a Cl atom is difficult due to a lot of repulsion between the electrons.
But cause an I atom is bigger it can attach to 7 F atoms easily

sqqqqqqqqsq · Apr 26, 2014

itallion stallion said:
Sorry I can't.all I can say is that for option a charge on the cation will only determine strength of metallic bonding and lattice energy.ratio of charge will only tell the formula.like Mg has charge +2 and cl-1 so compound formula will be mgcl2.Option c seems appropriate.never heard anything like sum of charges so no simply.

Listen what i can understand from this question without calculating anything is that the second equation shows the enthalpy change of atomization which is an endothermic process (the value is +ve) and the only value which is positive is D

saadgujjar · Apr 26, 2014

Plz explain all parts

Abdel Moniem · Apr 26, 2014

http://papers.xtremepapers.com/CIE/...d AS Level/Chemistry (9701)/9701_s06_qp_2.pdf
Question 4e)

MiniSacBall · Apr 26, 2014

Abdel Moniem said:
http://papers.xtremepapers.com/CIE/Cambridge International A and AS Level/Chemistry (9701)/9701_s06_qp_2.pdf
Question 4e)

You can check the ms (Mark Scheme).
The answer is both oxidation and reduction has occurred in one step.
Allyl alcohol is converted into propanal in two steps with out Catalyst:
The first step is reduction (Reduction is Gain of hydrogen, in this case two hydrogen is gained) from the figure while the second is oxidation (As primary alcohol is converted to aldehyde )
But with catalyst as in one step reaction in c, the oxidation and reduction both occur. So that's it.
Hope this helps!

AbbbbY · Apr 26, 2014

Namehere said:
Abby, did you have time to find any physics "factsheets" ?

I've them spread over my hard drive I'm just compiling them. Having a tough time finding the individual documents in data over a terabyte. Their names are weird numbers so cant do a search. Slightly more time please. Hopefully will upload them tonite

Abdel Moniem · Apr 26, 2014

How does oxidation and reduction occur when ally alcohol is converted into propanal using a ruthenium catalyst

MiniSacBall said:
You can check the ms (Mark Scheme).
The answer is both oxidation and reduction has occurred in one step.
Allyl alcohol is converted into propanal in two steps with out Catalyst:
The first step is reduction (Reduction is Gain of hydrogen, in this case two hydrogen is gained) from the figure while the second is oxidation (As primary alcohol is converted to aldehyde )
But with catalyst as in one step reaction in c, the oxidation and reduction both occur. So that's it.
Hope this helps!

Abdel Moniem · Apr 26, 2014

http://papers.xtremepapers.com/CIE/...d AS Level/Chemistry (9701)/9701_w06_qp_2.pdf
Q2ci

AbbbbY · Apr 26, 2014

Abdel Moniem said:
http://papers.xtremepapers.com/CIE/Cambridge International A and AS Level/Chemistry (9701)/9701_w06_qp_2.pdf
Q2ci

Oxidising Agent?

AbbbbY · Apr 26, 2014

saadgujjar said:
Plz explain all parts View attachment 40307

i- The double bond will split. The left side will form a ketone and the right side a Carboxylic acid.

ii- both the side chains will change to COOH. I believe it'll be called 1,4 di-benzoic acid.

iii- The secondary alcohol (left) will change to a ketone, the primary (right) will change to a carboxylic acid [i believe aldehyde will be acceptable too as they haven't mentioned if it's heated under reflux or not].

e) Just add two OH across the double bond.

reaction 1: cold KMnO4
reaction 2: K2Cr2O7 + H+ + heat under reflux

If you don't get the products, let me know and I'll draw them.

saadgujjar · Apr 27, 2014

Plz explain

saadgujjar · Apr 27, 2014

AbbbbY said:
i- The double bond will split. The left side will form a ketone and the right side a Carboxylic acid.

ii- both the side chains will change to COOH. I believe it'll be called 1,4 di-benzoic acid.

iii- The secondary alcohol (left) will change to a ketone, the primary (right) will change to a carboxylic acid [i believe aldehyde will be acceptable too as they haven't mentioned if it's heated under reflux or not].

e) Just add two OH across the double bond.

reaction 1: cold KMnO4
reaction 2: K2Cr2O7 + H+ + heat under reflux

If you don't get the products, let me know and I'll draw them.

thnx.....can u give me any link where I can read about the splitting of double bonds?

AbbbbY · Apr 27, 2014

saadgujjar said:
Plz explainView attachment 40309

lys-val-ser-ala-gly-ala-gly-asp ?

AbbbbY · Apr 27, 2014

saadgujjar said:
thnx.....can u give me any link where I can read about the splitting of double bonds?

http://www.chemguide.co.uk/organicprops/alkenes/kmno4.html

Snowysangel · Apr 27, 2014

Can someone please explain protonation??

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