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chem q colourimetry (1 Viewer)

Masaken

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i might be a bit stupid but i'm not sure where you start. like i know you have to start by using the formula for A they give above part (a) and i know where to go from there, but i don't know what values you're meant to sub in because the question doesn't give any other information about the light intensity or the absorbance or any concentration, unless i'm meant to deduce the intensity of the light from the graph?? (if so it might have slipped from my mind bc i have no idea what to do). could someone help with how to find the intensity of the light from the info of the q ?? sorry if it's so obvious i just have no idea, thank you in advance
 

SadCeliac

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i might be a bit stupid but i'm not sure where you start. like i know you have to start by using the formula for A they give above part (a) and i know where to go from there, but i don't know what values you're meant to sub in because the question doesn't give any other information about the light intensity or the absorbance or any concentration, unless i'm meant to deduce the intensity of the light from the graph?? (if so it might have slipped from my mind bc i have no idea what to do). could someone help with how to find the intensity of the light from the info of the q ?? sorry if it's so obvious i just have no idea, thank you in advance
there's a formula A = elc
something like that??? not too sure though lol sorry
 

Masaken

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there's a formula A = elc
something like that??? not too sure though lol sorry
yeah A = elc = log(I0/I) but i've no idea how that'll help cos the q doesn't provide any specific information for either of the formulas unless it's on the graph but idk what to do...
that's ok thanks tho
 

carrotsss

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I ran into that a while back, the question in this copy is missing info for some reason iirc ill try find the version thats not missing it
 

Unovan

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yeah its easy once u actually have the info
For all colourimetrey questions do u assume that light before entering sample was 100% intensity

that's how ive been doing them but idk if flawed or if you need to state assumption or if its just complete wrong
 

carrotsss

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For all colourimetrey questions do u assume that light before entering sample was 100% intensity

that's how ive been doing them but idk if flawed or if you need to state assumption or if its just complete wrong
yeah the final it’s like a percentage of the original
 

Luukas.2

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For all colourimetrey questions do u assume that light before entering sample was 100% intensity

that's how ive been doing them but idk if flawed or if you need to state assumption or if its just complete wrong
Sort of...

The intensity before passing through the solution is defined to be I0.

After passing through, the intensity is 42.6% of what it was before. That is, it has become I = 42.6% x I0 = 0.426I0.

You then know the value of the ratio I0 / I = I0 / 0.426I0 = 1 / 0.426, on cancelling.

This is the same value that you will get if you assume that I0 = 1 and thus take 42.6% as meaning I = 0.426.

The former approach is more mathematically sound, but the latter is probably fine given the Chemistry HSC attitudes towards mathematical rigour.

In either case, what you have is a number you can put into the calculator in order to find A.
 

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