Utilisateur
The speed at which reactants are converted into products.
Rate = volume of gas ÷ time
Rate = change in mass ÷ time
Increases particle kinetic energy → more frequent successful collisions.
More particles have energy ≥ activation energy.
Higher concentration = more particles per volume = more collisions.
Higher pressure = particles closer together = more collisions.
Larger surface area = more exposed particles = more collisions.
A substance that speeds up a reaction without being used up.
Provide an alternative pathway with lower activation energy.
Minimum energy particles must have to react.
Particles must collide with enough energy and correct orientation to react.
Gas volume, mass loss, colour change, or precipitate formation.
Reactants are used up → fewer successful collisions.
Investigating effect of concentration on rate using sodium thiosulfate.
