eternallyboreduser
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i don't know the new chem syllabus but this is just a matter of balancing reactions/working with molar masses no?Does this q only require knowledge from mod 2? Because i am very stuck on it.View attachment 42434
wdymim good off that
Say again!?!?wdym
he means his good off thatwdym
whyhe means his good off that
his clearly good off that mate can you stop pressing into his personal matters?
chill dawg it aint that deep i was jokinghis clearly good off that mate can you stop pressing into his personal matters?
Excess HCl liberates CO2, so C and O are two of the four elements in the mineral... and they are present as carbonate ions, CO32-, or as hydrogencarbonate ions, HCO3- (or possibly both)... but the latter options are only possible if hydrogen could be one of the four elements in the mineral.Does this q only require knowledge from mod 2? Because i am very stuck on it.View attachment 42434
R concepts from other modules other than 2 needed because i have no clue what some of these stuff r… never ever heard of a uranyl ion beforrExcess HCl liberates CO2, so C and O are two of the four elements in the mineral... and they are present as carbonate ions, CO32-, or as hydrogencarbonate ions, HCO3- (or possibly both)... but the latter options are only possible if hydrogen could be one of the four elements in the mineral.
The uranyl ion is UO22+ and thus uranyl zinc acetate is UO2Zn(CH3COO)4. The only place that sodium could have come from in the precipitate is the mineral, so that element must also be present.
From this, we can hypothesise that the mineral is NaxHy(CO3)z where x + y = 2z (to balance the charge).
Now, use the reaction
NaxHy(CO3)z + 2z HCl ------> z CO2 + z H2O + x Na+ + yH+ + 2z Cl-
with 10.000 g of NaxHy(CO3)z and 4.917 g of CO2 to find z.
Then, use the reaction
NaxHy(CO3)z + Xs UO2Zn(CH3COO)4 ------> x (UO2)3ZnNa(CH3COO)9.6H2O + other products
with 0.1000g of the mineral and 2.148 g of the precipitate to find x.
Then, use y = 2z - x.
The answers should be x = 5, y = 3, z = 4.
Hence, the mineral is Na5H3(CO3)4, or more likely Na5(HCO3)3CO3, or a double salt Na2CO3.3NaHCO3.
how am i suppose to chill?!? you clearly have no respect for others personal space, get it together mate and pull your finger out!chill dawg it aint that deep i was joking
Very few HSC students will have heard of the uranyl ion, nor the precipitation described. It's a challenging question because it tests if you can deduce such things from the information given. The product given has nine acetate anions with a total 9- charge, so the cations must add to 9+. Since the sodium is always a 1+ cation and zinc is always a 2+ cation, and there is only one of each in the formula of the product, the remaining three uranyl units must amount to a total of a 6+ charge, and so the ion must be UO22+. Then, you can treat it as any other cation, like ammonium, for example.R concepts from other modules other than 2 needed because i have no clue what some of these stuff r… never ever heard of a uranyl ion beforr
How do yk this?Excess HCl liberates CO2, so C and O are two of the four elements in the mineral... and they are present as carbonate ions, CO32-, or as hydrogencarbonate ions, HCO3- (or possibly both)... but the latter options are only possible if hydrogen could be one of the four elements in the mineral.
The uranyl ion is UO22+ and thus uranyl zinc acetate is UO2Zn(CH3COO)4. The only place that sodium could have come from in the precipitate is the mineral, so that element must also be present.
From this, we can hypothesise that the mineral is NaxHy(CO3)z where x + y = 2z (to balance the charge).
Now, use the reaction
NaxHy(CO3)z + 2z HCl ------> z CO2 + z H2O + x Na+ + yH+ + 2z Cl-
with 10.000 g of NaxHy(CO3)z and 4.917 g of CO2 to find z.
Then, use the reaction
NaxHy(CO3)z + Xs UO2Zn(CH3COO)4 ------> x (UO2)3ZnNa(CH3COO)9.6H2O + other products
with 0.1000g of the mineral and 2.148 g of the precipitate to find x.
Then, use y = 2z - x.
The answers should be x = 5, y = 3, z = 4.
Hence, the mineral is Na5H3(CO3)4, or more likely Na5(HCO3)3CO3, or a double salt Na2CO3.3NaHCO3.
Standard reaction in general chemistry:How do yk this?
Am i supposed to know this in mod2 chem because i have not yet come across anything like that. I have no clue what a net ionic or neutral species eqn isStandard reaction in general chemistry:
acid (aq) + metal carbonate (s or aq) ----> salt (aq if soluble) + carbon dioxide (g) + water (l)
For example, neutral species equation:
2HCl (aq) + Na2CO3 (s) -----> 2NaCl (aq) + CO2 (g) + H2O (l}
As a net ionic equation:
2H+ (aq) + Na2CO3 (s) -----> 2Na+ (aq) + CO2 (g) + H2O (l}
Second example, neutral species equation:
2HNO3 (aq) + CuCO3 (s) -----> Cu(NO3)2 (aq) + CO2 (g) + H2O (l}
As a net ionic equation:
2H+ (aq) + CuCO3 (s) -----> Cu2+ (aq) + CO2 (g) + H2O (l}
Third example, neutral species equation:
H2SO4 (aq) + Li2CO3 (aq) -----> Li2SO4 (aq) + CO2 (g) + H2O (l}
As a net ionic equation:
2H+ (aq) + CO32- (aq) -----> CO2 (g) + H2O (l}
Similar examples can be written for the general reaction
acid (aq) + metal hydrogencarbonate (s or aq) ----> salt (aq if soluble) + carbon dioxide (g) + water (l)
In short, the evolution of carbon dioxide gas from a mineral is evidence for the presence of carbonate and/or hydrogencarbonate anions. The problem with the question as written is that there could be other anions present that react with acid but without the evolution of carbon dioxide - like oxide or hydroxide - but the question can't be answered if they are present (due to insufficient information) and, in any case, they aren't present in this mineral.
These concepts are spread between modules 2 and 3, technically. Net ionic equations are covered in the module 2 worksheets for KISS, for example. The reactions above are in Module 3 topic tests from Hegarty, rather than module 2.Am i supposed to know this in mod2 chem because i have not yet come across anything like that. I have no clue what a net ionic or neutral species eqn is