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Question
question 6 (1 point)
which statement about the factors that affect reaction rates is false?
decreasing the concentrations of the reacting particles decreases the chance of collision.
a collision with poor orientation requires a higher activation energy than a collision with optimum orientation.
increasing the pressure in a gaseous reaction increases the chance of collision.
a reaction occurs every time particles of the reactants collide.
increasing the temperature increases the reaction rate.
For a reaction to occur, particles must collide with sufficient energy (activation energy) and proper orientation. Not every collision meets these criteria.
- Decreasing reactant concentrations reduces collision chances as there are fewer particles.
- Higher pressure in gas reactions (for gaseous reactants) means more particles per unit volume, increasing collision probability.
- Poor - orientation collisions need more energy to react compared to optimal - orientation ones.
- Increasing temperature gives particles more kinetic energy (more particles have energy ≥ activation energy), increasing the reaction rate.
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A reaction occurs every time particles of the reactants collide.