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Haha np bt they said lead(ii)oxide which is PbOThere such thing as called PbO3 it was typo
and i wanted you to get it yourself that's why i stated just the equation
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Haha np bt they said lead(ii)oxide which is PbOThere such thing as called PbO3 it was typo
and i wanted you to get it yourself that's why i stated just the equation
My apologies on that one thoughHaha np bt they said lead(ii)oxide which is PbO
http://papers.xtremepapers.com/CIE/Cambridge International A and AS Level/Chemistry (9701)/9701_s06_qp_1.pdf
Number 10??? answer is 4/3 how????
IDIDINT UNDERSTAND POLEASE HELO1 aldehydes and ketones actually contain the same no of C and H so its defiantly a yes
2 take a carboxylic acid you decide?
for example ethanoic acid C2H4O2
or just CnH2nO2
C:H= n/2n=1/2
now lets take an ester
methyl ethanote C3H6O2
or just CnH2nO2
C:H= n/2n=1/2
3 alkenes CnH2n (n/2n)
ketones CH3COCH3
C3H6O
CnH2nO
C:H= n/2n
Take examples and then make ratio using the actual general formula may get you confusingI
IDIDINT UNDERSTAND POLEASE HELO
Q.2Oct/Nov 2009 P11 Q2. Help needed asap! I know its lame but my head is not working right now :/ please help!
THNX ALOTGCE As and a level
http://papers.xtremepapers.com/CIE/... AS Level/Chemistry (9701)/9701_w12_qp_11.pdf
DOUBTS:
Q1 ----> Calculate the oxidation number before and after
A) Cl2 undergoes oxidation from 0 to 1
B) again Cl2 undergoes oxidation from 0 to 5
C) Cr from 6+ to 3+ (reduction) and Fe from 2+ to 3+
D)Mn from 6 to 3 (only reduction)
B has the biggest oxidation change
Q3 ----> There is not explanation for this buddy i explained this before remember using the same theory here
Q6 ----> use PV=(mass/Mr)RT
103*1000*5.3*10^-3/(8.31*(273+60))=(mass/17)
mass=3.4
Q9 ----> ANSWER A
All the other are wrong
all particles of the particular element don't always have the same mass maybe it is an isotope then they have diffrent
yet again an isotope of one element can have a mass of other element
They can be!
Q11 --> Remember what bond energy is,it is the energy released when a covalent bond of a gaseous molecule is broken to give gaseous atoms and not molecules or compounds or molecules. So in A only is this happening in the rest of the options ∆H not only contains the bond breaking energy but also bond formation so the resulting∆H for B,C and D is lesser than the value of X----Y bond energy !
Q12 --> ANSWER B
water is bent and CO2 is linear
B is correct as both are bent(Sulfur has six valence electrons, plus 14 for two chlorine for a total of 20 electrons. When you construct the Lewis structure you will see two bonds and two lone pairs on sulfur. This will give tetrahedral electron pair geometry and bent molecular geometry. Plus it is bent at a little less than 109.5 degrees. )
Q13 -->
The Sodium (Na) atom is much larger by comparison to the Chlorine (Cl) atom.
The periodic trend of atomic radii gets smaller as you move accross a row. Since Sodium is at the start of the row and Chlorine at the end, Sodium is larger.
This has to due to with the largest shell holding electrons, both Na and Cl's largest shell is the 2S orbital, but since Chlorine has many more protons in its nucleus, those electrons are held more closely than those of Sodium.
On the other hand, when an atom becomes an ion, it either gains or looses an electron (protons dont change). When Sodium becomes an ion, it looses 1 electron to become Na+ and because of this, it looses the electron in its outer shell which is making it so big (ion is smaller than the atom).
When Chlorine becomes an ion, it gains an electron which goes into completing its Octet and the ion is larger than the atom.
When all is said and done, the Chloride ion (Cl-) is much larger than the Sodium ion (Na+).
Q17 --> n = PV/RT
n = (1 x 0.3)/(0.0821 x 298)
n = 0.0123 moles of O2
moles of O^2- ions = 0.0246
moles of metal = 0.0246
molar mass of metal = 1.15/0.0246 = 46.75g.mol
this molar mass is more closer to the molar mass of Ca. So this metal should be Ca and the oxide will be CaO
Q21 --> For a compound to have cis trans
View attachment 44768
here the second carbon already has CH2CH3 which is C2H5 so you cant have it again if you do then no Cis and trans
Q24 --> ANSWER C
How to get
HO2CCOCH2CO2H using ho acidified KMnO4
If you have the course book check out page 226
go back wards
Q26 --> ANSWER C
F usually doesn't have a free radical
and Cl does do C
Q30 --> ANSWER B
C is correct ans, as C6H12O is an alcohol, so it ll oxidise to carboxylic acid and on reaction with ethanol, ester produce
C6H12O will form when propanoic acid react with entanol
Q31--> ANSWER B
can you mention wha is wrong it is quite a straight forward question
Q38 --> ANSWER B
Regent Y is PCl3
and 1 and 2 are correct
Q40 --> ANSWER D
1- because it has double bond C=C
2- it is for alcohols for Primary and secondary but here we have carboxylic acid
3- it is not an aldehyde it is Carboxylic acid group
right now i am solving the paperHi guys,
Can someone please look into the following questions
Paper - June 2011 QP12
Questions - 6,11,15,17,24,29,35,40.
Alright please let me know how well you do at those questions.right now i am solving the paper
The halogenalkane in B is primary and C is tertiary. Primary halogenalkanes have SN-2 reactions which involve one step. Tertiary halogenalkanes have SN-1 reactions which involve two steps.I am clueless. B or C no idea please anyone explain me.
Q28 , B is correct.
http://papers.xtremepapers.com/CIE/Cambridge International A and AS Level/Chemistry (9701)/9701_s12_qp_11.pdf
so shouldn't C be right?The halogenalkane in B is primary and C is tertiary. Primary halogenalkanes have SN-2 reactions which involve one step. Tertiary halogenalkanes have SN-1 reactions which involve two steps.
C does have two steps but they have asked which doesn't so B is right as it doesn't.s
so shouldn't C be right?
srry manHi guys,
Can someone please look into the following questions
Paper - June 2011 QP12
Questions - 6,11,15,17,24,29,35,40.
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