What happens during the electrolysis of sodium chloride?
a)the mass of the anode decreases by time
b) sodium ions are oxidized at the anode
c) chloride ions are reduced at the cathode
d)the mass of the cathode increases by time
A. Cr2O7 -2 + 2OH- → 2Cr2O4 -2 + H2O
Redox or Nonredox?
If REDOX:
Balanced equation:
Oxidizing agent:
Reducing agent:
Convert the following concentrations of aqueous solutions.
1.00m K2SO4(aq) %(w/w) FW (K2SO4)=174.26 g/mol
For the reaction, H2O(l)⟶H2O(g), calculate ΔG at a) 20ºC, b) 100ºC and c) 150ºC.
Calculate the standard-free energy changes for the reaction 2MgO(s) + 2Mg(s) + O2(g) at 25ºC .
With solution
Determine the equivalent of one mole of the following substances, given type of reaction they participate in.
1. NaOH Acid-Base Reaction to form NaCl
2. HNO3 Acid-Base reaction to form NaNO3
3. H2SO4 Acid-Base reaction to form Na2SO4
4. Sr(OH)2 Acid-Base reaction to form SrCl2
5. H3PO4 Acid-Base reaction to form Na3PO4
6. CaCl2 precipitation reaction to form CaCO3
7. H3PO4 precipitation reaction to form Mg3(PO2)2
8. AgNO3 precipitation reaction to form Agl
9. Ba(C2H3O2)2 precipitation reaction to form BaSO4
10. AlBr3 precipitation reaction to form Al(OH)3
11. FeCl3 redox reaction to form FeCl3
12. Br2 redox reaction to form KBr
13. Zn redox reaction to form ZnSO4
14. HCl redox reaction to form H2
15. Cu redox reaction to form CuO
What is the concentration of the solutions of the following:
1. 1mol and 1kg
2. 1mol and 1L
3. 5mol and 100g
4. 4mol and 25mL
5. 20mol and 9L
6. 34mol and 1000kg
7. 9mmol and 100mL
8. 4.3 umol and 600g
9. 4mmol and 15mg
10. 11nmol and 20g
If 15.0 mol of C3H8 react with 4.5 mol of O2 which is the limiting reagent? Which is the excess reagent?
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If the actual yield of CO2 is 150g, what is the percent yield of CO2?
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11. Describe the formation of outer orbit complex [Ni(H2O)6]2+ ion using VBT
11. Describe bonding in [Mn(CN)6]3- using VBT
State the hybridisation state of the metal, predict the geometry and magnetic property of the complex