The decomposition of dinitrogen tetroxide to nitrogen dioxide at 400°C follows first-order kinetics with a rate constant of 9.17 ×10-3 s-1. Starting with pure N2O4, how many minutes will it take for 85.0% to decompose?

Please like and give me a good ratings
The decomposition of dinitrogen tetroxide to nitrogen dioxide at 400°C follows first-order kinetics with a rate...
The decomposition of dinitrogen tetroxide to nitrogen dioxide at 400°C follows first-order kinetics with a rate constant of 3.75 × 10-3s-1. Starting with pure N2O4, how many minutes will it take for 37.5% to decompose? The decomposition of dinitrogen tetroxide to nitrogen dioxide at 400°C follows first-order kinetics with a rate constant of 3.75 × 10-3s-1. What is the half-life of this reaction in minutes?
QUESTION 22 The decomposition of dinitrogen tetroxide to nitrogen dioxide at 400°C follows first-order kinetics with a rate constant of 9.17 X10sl. Starting with pure N204, how many minutes will it take for 85.0% to decompose? *Please report 3 significant figures. Numbers only, No unit. No scientific notation.
QUESTION 16 The decomposition of dinitrogen tetroxide to nitrogen dioxide at 400°C follows first-order kinetics with a rate constant of 8.85 ×10-3 s-1. Starting with pure N2O4, how many minutes will it take for 54.0% to decompose? *Please report 3 significant figures. Numbers only, No unit. No scientific notation.
1)
2)
3)
The decomposition of dinitrogen tetroxide to nitrogen dioxide at 400°C follows first-order kinetics with a rate constant of 3.84 X10-3-1. Starting with pure N204, how many minutes will it take for 38.0% to decompose? Suppose the surface-catalyzed hydrogenation reaction of an unsaturated hydrocarbon has a rate constant of 0.374 M/min. The reaction is observed to follow zero-order kinetics. If the initial concentration of the hydrocarbon is 2.90 M, what is the half-life of the reaction in seconds?...
QUESTION 4 Starting with pure N o w The decomposition of dinitrogen tetroxide to nitrogen dioxide 400°C follows first-order kinetics with a rate constant of 2.57 minutes will it take for 85.0% to decompose? Please report 3 significant figures. Numbers only. No unit. No scientific notation
Gaseous dinitrogen tetroxide(N2O4) decoposes to form nitrogen dioxide gas (NO2). Write a balanced equation for this reaction. In carrying, out and experiment based on this reaction,2.5L of Dinitrogen Tetroxide were used. How many liters of nitrogen dioxide are produced? temperature and pressure were held constant
Dinitrogen tetroxide decomposes to nitrogen dioxide. Write the balanced chemical equation for this reaction. Start with pure N2O4 at 1.00 atm. Find the equilibrium partial pressures of N2O4 and NO2. The equilibrium constant for this reaction is K = 11.
The reversible decomposition of dinitrogen tetroxide, N, O, to nitrogen dioxide, NO,, is shown. For this reaction, Keq = 0.15. = NO dinitrogen tetroxide 2NO, nitrogen dioxide At equilibrium, is the concentration of reactants or products greater? The concentration of reactants equals the concentration of products at equilibrium. The concentration of products is greater than the concentration of reactants at equilibrium. The concentration of reactants is greater than the concentration of products at equilibrium Consider this system at equilibrium. PC12(g)...
At 25 degrees C the decomposition of dinitrogen tetroxide N2O4(g)->2NO2(g) has an equilibrium constant Kp of .144 If the equilibrium pressure of nitrogen dioxide is .298 atm, what is the pressure of dinitrogen tetroxide? A. 2.07atm B. 1.62atm C. 1.03 atm D. 0.0128 atm
questions 11-13
QUESTION 11 CaCO3 (6) + CaO (8) + CO2 (g) At 423 °C, the reaction reaches equilibrium. If Pco2 -2.89 atm, what is Ke value ? *Please report 3 significant figures. Numbers only, No unit. No scientific notation. QUESTION 12 The decomposition of dinitrogen tetroxide to nitrogen dioxide at 400°C follows first-order kinetics with a rate constant of 4.59 10-31 Starting with pure N204, how many minutes will it take for 42.0% to decompose? *Please report 3 significant...