At 500°C the equilibrium constant, Kp, is 4.00 × 10-4 for the equilibrium: 2HCN(g)
H2(g) + C2N2(g)
What is Kp for the following reaction?
H2(g) + C2N2(g)
2HCN(g)
A) 2.00 × 10-4
B) -4.00 × 10-4
C) 1.25 × 103
D) 2.50 × 103
E) 4.00 × 104
Correct Answer:
Verified
Q35: H2SO3(aq) Q36: In water, the following equilibrium exists: H+(aq) Q37: Hydrogen sulfide will react with water as Q38: Consider the equilibrium reaction: N2O4(g) Q39: Consider the reactions of cadmium with the Q41: 10.0 mL of a 0.100 mol L-1 Q42: Nitric oxide and bromine were allowed to Q44: At 850°C, the equilibrium constant Kp for Q45: At 25°C, the equilibrium constant Kc for Q65: Hydrogen iodide, HI, is formed in an![]()

Unlock this Answer For Free Now!
View this answer and more for free by performing one of the following actions
Scan the QR code to install the App and get 2 free unlocks
Unlock quizzes for free by uploading documents