NEW
Font size
WorksheetsAP Chemistry Thermodynamics Lesson
Total questions: 51
Worksheet time: 2hrs 49mins
Is this reaction endothermic or exothermic?
A liquid with a specific hear of 1.9 J/gC has 4750 J of energy added to it. The temperature changed from 20 degrees C to 30 degrees C, what is the mass of the liquid?
250 cal
2500g
250 g
2500 cal
2N2 + 3H2 --> 2NH3 + 46 kJ
How much energy would be produced if only 1 mol of nitrogen was reacted?
Which of the letters (A-D) represents the minimum amount of energy required for the reaction to proceed forward?
A
B
C
D
You are given these two equations:
2H2 + O2 → 2H2O ∆H = -572 kJ
H2 + O2 → H2O2 ∆H = -188 kJ
2CO + 2NO → 2CO2 + N2
You are given these two equations:
2CO + O2 → 2CO2 ∆H = -566.0 kJ
N2 + O2 →2NO ∆H = 180.6 kJ
When thermal energy is added to a substance, the substance's particles move:
More rapidly at an increased distance from each other.
More rapidly with less distance between each other.
More slowly with a greater distance between each other.
More slowly with a reduced distance between each other.
A substance of mass 2.0 kilograms is originally in the solid state. The graph below represents the temperature of the substance as heat is added to it. During which interval is the average kinetic energy of the molecules of the substance unchanged?
BC
CD
AB
AC
Which phase change is exothermic?
H 2O( l) → H 2O( s)
H 2O( l) → H 2O( s)
H 2O( l) → H 2O( g)
H 2O( s) → H 2O( g)
NaCl(s) → Na+(aq) + Cl-(aq), the entropy of the system
At what temperature will a reaction become spontaneous if the change in enthalpy is -192 KJ/mol and the change in entropy is -562 J/mol?
Above 341.6 K
Below 341.6 K
Above .34 K
Below .34 K
Predict the entropy change, ΔS.
ΔS = +
ΔS = -
ΔS = 0
ΔS = no change
ΔHf
N2O5 11.289 kJ/mol
NO2 33.150 kJ/mol
O2 0 kJ/mol
ΔHreaction = ?
If an equilibrium constant, K>1 , what wll be the sign of the Gibbs Free Energy
Δ G = 0
Δ G < 0
Δ G > 0
For a particular chemical reaction ΔH = 5.5 kJ and ΔS = -25 J/K
Under what temperature conditions is the reaction thermodynamically favored?
When T < -220 K
When T < 220 K
The reaction is spontaneous at all temperatures.
The reaction is not spontaneous at any temperatures.
The Ksp for a very insoluble salt is 4.2 x 10-47 at 298 K. What is ΔG° for the dissolution of the salt in water?
-265 kJ/molrxn
+265 kJ/molrxn
-115 kJ/molrxn
+115 kJ/molrxn
