• Congratulations to the Class of 2024 on your results!
    Let us know how you went here
    Got a question about your uni preferences? Ask us here

I need help with this question (1 Viewer)

indeed

Active Member
Joined
Oct 23, 2022
Messages
222
Gender
Male
HSC
2023
1697851453044.png

Idk if this is right, it's based on the assumption that the chemical formula of the salt is X+ and Y- (1 charged)
 

Luukas.2

Well-Known Member
Joined
Sep 21, 2023
Messages
443
Gender
Male
HSC
2023
I think the question means salt in the specific, non-chemical usage... ie. table salt, sodium chloride.

The silver nitrate then precipitates the chloride ions as silver chloride solid, which is removed by filtration. The excess (remaining) silver cations are quantified by titration with thiocyanate (precipitated as silver thiocyanate, likely using an iron(III) salt as the indicator).
 

qldbulls

Active Member
Joined
Feb 24, 2023
Messages
118
Gender
Male
HSC
2023
Yeah it's literally just a back titration for NaCl then x10
 

An0nyM0usUseR455

New Member
Joined
Mar 21, 2023
Messages
21
Gender
Male
HSC
N/A
I think the question means salt in the specific, non-chemical usage... ie. table salt, sodium chloride.

The silver nitrate then precipitates the chloride ions as silver chloride solid, which is removed by filtration. The excess (remaining) silver cations are quantified by titration with thiocyanate (precipitated as silver thiocyanate, likely using an iron(III) salt as the indicator).
so do I find the number of moles of thiocyanate that reacted with the excess Ag and subtract from the total Ag used. Then do I make use of the fact that everything is 1:1 so no. of mol of salt = no. of mol Ag used and divide by volume and then multiply by 10 cuz its diluted?

thats what i did in the first place and the answer is 0.12
 

qldbulls

Active Member
Joined
Feb 24, 2023
Messages
118
Gender
Male
HSC
2023
so do I find the number of moles of thiocyanate that reacted with the excess Ag and subtract from the total Ag used. Then do I make use of the fact that everything is 1:1 so no. of mol of salt = no. of mol Ag used and divide by volume and then multiply by 10 cuz its diluted?

thats what i did in the first place and the answer is 0.12
Moles Ag original = (0.12x0.025)
Molarity of Ag remaining in the 25mL of filtrate = (0.11x0.0123) given stoichiometry with the thiocyanate
Filtrate overall is 50mL therefore actual moles of Ag remaining = 2x(0.11x0.0123)
Take that away from the original moles of Ag (0.12x0.025) - 2x(0.11x0.0123) = 0.294x10^-3 moles used in reaction with NaCl
Therefore molarity of NaCl solution = (0.294x10^-3)/(0.025) = 0.01176
Multiply by 10 for dilution = 0.1176 = 0.12M (2sf)

Chem in focus is a decent textbook eh?
 

Users Who Are Viewing This Thread (Users: 0, Guests: 1)

Top