We use cookies to give you the best experience possible. By continuing we’ll assume you’re on board with our cookie policy

See Pricing

What's Your Topic?

Hire a Professional Writer Now

The input space is limited by 250 symbols

What's Your Deadline?

Choose 3 Hours or More.
2/4 steps

How Many Pages?

3/4 steps

Sign Up and See Pricing

"You must agree to out terms of services and privacy policy"
Get Offer


Hire a Professional Writer Now

The input space is limited by 250 symbols

Deadline:2 days left
"You must agree to out terms of services and privacy policy"
Write my paper


2.1: Calculate the mass percentage of benzene (C6H6) and carbon tetrachloride (CCl4) if 22 g of benzene is dissolved in 122 g of carbon tetrachloride.
A. Mass percentage of C6H6

Don't use plagiarized sources. Get Your Custom Essay on
Just from $13,9/Page
Get custom paper

Mass percentage of CCl4

Alternatively, Mass percentage of CCl4 = (100 ? 15.28)% = 84.72%
2.2: Calculate the mole fraction of benzene in solution containing 30% by mass in carbon tetrachloride.
A. Let the total mass of the solution be 100 g and the mass of benzene be 30 g. ?Mass of carbon tetrachloride = (100 ? 30)g
= 70 g
Molar mass of benzene (C6H6) = 78 g mol?1
?Number of moles of = 0.

3846 mol
Molar mass of carbon tetrachloride (CCl4) = 154 g mol?1
?Number of moles of CCl4 = 0.4545 mol
Thus, the mole fraction of C6H6 is given as:

= 0.458
2.3: Calculate the molarity of each of the following solutions: (a) 30 g of Co(NO3)2. 6H2O in 4.3 L of solution (b) 30 mL of 0.5 M H2SO4diluted to 500 mL.
A. Molarity is given by:

(a) Molar mass of Co (NO3)2.

6H2O = 291 g mol?1
?Moles of Co (NO3)2.6H2O = 0.103 mol
Therefore, molarity = 0.023 M
(b) Number of moles present in 1000 mL of 0.5 M H2SO4 = 0.5 mol
?Number of moles present in 30 mL of 0.5 M H2SO4 = 0.015 mol
Therefore, molarity = 0.03 M
2.4: Calculate the mass of urea (NH2CONH2) required in making 2.5 kg of 0.25 molal aqueous solution.
A. Molar mass of urea (NH2CONH2) = 60 g mol?1
0.25 molal aqueous solution of urea means:
1000 g of water contains 0.25 mol = (0.25 ? 60)g of urea = 15 g of urea
That is, (1000 + 15) g of solution contains 15 g of urea
Therefore, 2.5 kg (2500 g) of solution contains = 36.95 g
= 37 g of urea (approximately)
Hence, mass of urea required = 37 g
Note: There is a slight variation in this answer and the one given in the NCERT textbook.
2.5: Calculate (a) molality (b) molarity and (c) mole fraction of KI if the density of 20% (mass/mass) aqueous KI is 1.202 g mL-1.
A. (a) Molar mass of KI = 39 + 127 = 166 g.

Cite this Chemistry

Chemistry. (2018, Aug 11). Retrieved from https://graduateway.com/chemistry-3/

Show less
  • Use multiple resourses when assembling your essay
  • Get help form professional writers when not sure you can do it yourself
  • Use Plagiarism Checker to double check your essay
  • Do not copy and paste free to download essays
Get plagiarism free essay

Search for essay samples now

Haven't found the Essay You Want?

Get my paper now

For Only $13.90/page