1. One liter of saturated actinium hydroxide solution contains .021 g of dissolv
ID: 930736 • Letter: 1
Question
1. One liter of saturated actinium hydroxide solution contains .021 g of dissolved Ac(OH)3. Calculate Ksp for Ac(OH)3
CORRECT ANS: 8.8E-16 solve and explain pls
2. For a particular reaction at STP ( 298 K) CHANGE IN H= -297kJ/MOL AND CHANGE IN S= -113.3 J/MOL*K. At which of the following temperatures would the reaction become spontaneous?
CORRECT ANS: 2450 K
Solve and show steps
3. Rate data have been determined at a particular temp for the overall reaction 2NO + 2h2-> N2 + 2H2O IN WHICH ALL REACTANTS AND PRODUCTS ARE GASES
TRIAL INITIAL [NO] INTIAL [H2] INITIAL RATE (MS^-1)
1 .1M .2M .0150
2 .1M .3M .0225
3 .2M .2M .0600
(which column do you divide by what to get the power for determining that rate law expression?
4. Molten AlCl3 is electrolyzed for 5.0 hours with a Current of .4 Amps. Metallic Al is produced at one electrode and chlorine gas (Cl2) is produced at the other. How many grams of aluminum are produced?
CORRECT ANS: 0.67 g (EXPLAIN AND SHOW WORK PLS)
Explanation / Answer
1) we know that
moles = mass / molar mass
also
molar mass or Ac(OH)3 = 274
now
moles of Ac(OH)3 = 0.021 / 274
moles of Ac(OH)3 = 7.664 x 10-5
now
molar solubility = moles / volume (L)
so
molar solubility of Ac(OH)3 = 7.664 x 10-5 / 1 = 7.664 x 10-5
now
Ac(OH)3 --> Ac+3 + 3OH-
let the molar solubility be s
then
[Ac+3]= s
[OH-] = 3s
Ksp = [Ac+3] [OH-]^3
so
Ksp = [s] [3s]^3
Ksp = 27s4
Ksp = 27 ( 7.664 x 10-5)^4
Ksp = 9 x 10-16
2) for a reaction to be spontaneous
dG < 0
now
dG = dH - dTS
so
dH - TdS < 0
(-297 x 1000) - ( T x -113.3) < 0
-297000 + 113.3T < 0
113.3 T < 297000
T < 2621
so
the temperature should be less than 2621 K
3)
let the rate law be
rate = k [ No]^a [ H2]^b
from trail 1 and 2
0.0225 /0.015 = ( 0.3 / 0.2 )^b
b = 1
from trail 1 and trail 3
0.06 / 0.015 = ( 0.2 / 0.1 )^a
a = 2
so
the rate law is
rate = k [ N0]^2 [H2]
4)
Al+3 + 3e- --> Al
according to fardays first law of electrolysis
m = I x t x M / F x Z
given
I = 0.4
time = 5 hr = 5 x 60 x 60 s
z =3 as three electrons are transferred
so
m = 0.4 x 5 x 60 x 60 x 27 / 96485 x 3
m = 0.67
so
0.67 g of Al is produced
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