Sciencemadness Discussion Board
Not logged in [Login ]
Go To Bottom

Printable Version  
Author: Subject: percent yield theoretical yield
toddlail
Harmless
*




Posts: 1
Registered: 29-11-2006
Member Is Offline

Mood: No Mood

[*] posted on 29-11-2006 at 18:16
percent yield theoretical yield


Given the following information, calculate the experimental percent yield of 1-bromobutane:

A student refluxed for 45 min a mixture of 7.5 mL of 1-butanol (MW=74.12 g/mol, d=0.810 g/mL), 15 g of sodium bromide (MW=102.9 g/mol) in 15 mL of water, and 12 mL of 18M sulfuric acid. After the reaction was worked up and the product was purified (using simple distillation) the student obtained 4.430 g of pure 1-bromobutane (MW=137.03 g/mol, d=1.276 g/mL).
View user's profile View All Posts By User
Baphomet
Hazard to Others
***




Posts: 211
Registered: 19-11-2006
Member Is Offline

Mood: No Mood

[*] posted on 29-11-2006 at 20:01


7.5 mL of 1-butanol = [(7.5 * 0.810) / 74.12] moles = 81.96 mmol

15 g of sodium bromide = 145.77 mmol

The equation proceeds thus:

C4H9OH + NaBr -> C4H9Br + NaOH

(Side reaction of NaOH and H2SO4 serves to speed the first reaction)

Each mole of 1-butanol is the limiting factor and yields one mole of 1-bromobutane theoretically, since NaBr is in excess

So the theoretical yield is 81.96 mmol = (81.96 * 137.03) / 1000 = 11.23 grams

The percentage of theoretical yield that was obtained is therefore: 4.430 / 11.23 = 39.45%
View user's profile View All Posts By User

  Go To Top