- Organic Chemistry
- Aldehydes and Ketones
- Alkyl Halides, Alcohols and ethers
- Amines and other nitrogen compounds
- Aromatic Chemistry
- Carbohydrates, Amino acids, protein, Vitamin and Fat
- Carboxylic acids and its derivatives
- Chemistry in daily life
- General Mechanism in organic compounds
- Hydrocarbons
- Nomenclature and isomerism
18 - Mole Concept and Stoicheometry Questions Answers
A sample of fuming HNO3 is labelled as 110% . assume that the labelling of fuming is similar the labelling of oleum . What is the % of free N2O5 in the sample??
plz annex explanatn also ans is 60%
x % HNO3 --------------------- 100 + (18/108)*x % of fuming HNO3
so 18x/108 = 10
or x = 60 %
The density of a gas is 3.80 g/l at STP. Calculate its density at 27°C and 700 torr pressure.
P = dRT/M
for first condition
760 = 3.8R273/M
and 700 = dR300/M
divide and get the answer
Two oxides of a metal M contain respectively 22.53% and 30.38% of O2. If the formula of first oxide is MO, the formula of second oxide is
(a) M2O3 (b) MO3 (c) M2O (d) M2O4
M O
77.47 22.53
m w M 16
formula for first oxide is MO
so 77.47/M = 22.53/16
so M = 77.47*16/22.53 = 55
M O
69.62 30.38
m w 55 16
so M:O = 69.62/55:30.38/16 = 1.27:1.90
1.9/1.27 = 1.5
so formula will be M2O3
24.5g KClO3 heated to give O2, which is allowed to react completely with H2 to form H2O. This H2 comes from Zn and H2SO4 reaction. The amount of Zn required for the purpose is
2KClO3 ----------------------> 2KCl + 3O2
3O2 + 6H2 --------------------> 6H2O
6Zn + 6H2SO4 -------------------> 6ZnSO4 + 6H2
so 2 mole KClO3 ----------------------------- 6 mole Zn
now solve
If the potential energy of hydrogen electron is -3.02eV in which of the following energy levels is electron present =
1st , 2nd , 3rd or 4th
Energy = -13.6/n2 , Potential Energy = -27.2/n2
for n = 3 we get -3.02
in this answer infinite is zero potential energy level
A 0.5 g sample of sodium nitrate on heating gives 44.8ml of O2 at STP. % purity of the sample is.............
my answer is 64% but the correct answer is 68%. HOW???
NaNO3 −−−−> NaNO2 + 1/2 O2
molar mass of sodium nitrate = 85
so 85 gm will give 11200 ml O2
so x gm will give 11200*x/85 = 2240x/17
on comparing with 44.8
we get 2240x/17 = 44.8
so x = 44.8*17/2240 = 17/50 = 34/100 = 0.34 gm
means 0.34 gm sodium nitrate is pure in 0.5 gm. sample so % purity = 0.34*100/0.50 = 68%
Equivalent weight of A2O in the given reaction is A2O = AO (molar mass of A2O = M)
O.N. change = 1-2 = -1
2 A are present so net change = 2
so e.w. = M/2
Mole fraction of C2H5OH in aqueous solution is 0.25. If the density of solution is 0.967g/ml. calculate molarity and molality.
0.75 mole water contains ...................................... 0.25 mole C2H5OH
so 0.75*18 gm contains ....................................... 0.25 mole
now calculate moles of alcohol in 1000 gm water. It will be molality
similarly
0.75 mole water contains ...................................... 0.25 mole C2H5OH
so 0.75*18 gm contains ....................................... 0.25*46 gm
so 0.75*18+0.25*46 gm solution contains ........................... 0.25 mole alcohol
so (0.75*18+0.25*46)*0.967 ml solution contains ............................. 0.25 mole alcohol
now calculate moles of alcohol in 1000 ml solution. It will be molarity
Sir the formula for converting volume in STP condition is given in my book if volume is not given in STP condition. But my problem is that I don't know how to use it . please explain me this formula and I request you to give me Ques. related to this formula.
Formula for converting volume at temperature T to STP is
P1V1/T1 = P2V2/T2
Two oxides of a metal contain 72.4% and 70% of metal respectively. If formula of 2nd oxide is M2O3, find that of the first?
Sir the answer is M3O4. But I don't know the steps for doing this type of question, so pls explain me each step!!!
for second oxide ratio of metal and oxygen = 70:30
let molcular mass of metal = M so 70/30 = 2M/3*16
or 7/3 = 2M/48 so M = 24*7/3 = 56
now for first oxide ratio of metal and oxygen = 72.4/27.6 (By weight)
so ratio by no. of atoms = (72.4/56)/(27.6/16) = 72.4*16/27.6*56 = 1158.4/1545.6 = 3/4