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QUESTION IMAGE

energy diagram energy reaction progress what is the correct sign conven…

Question

energy diagram
energy
reaction progress
what is the correct sign convention for the overall energy change based on this reaction graph?
unknown (?δh) positive (+δh)
negative (-δh) unchanging (no δh)

Explanation:

Step1: Analyze Energy Diagram

In a reaction energy diagram, the overall energy change ($\Delta H$) is the difference between the energy of the products and the energy of the reactants. If the products have higher energy than the reactants, the reaction is endothermic, and $\Delta H$ is positive. If the products have lower energy, it's exothermic, and $\Delta H$ is negative.
Looking at the given diagram, the final energy (products) is higher than the initial energy (reactants).

Step2: Determine $\Delta H$ Sign

Since products have more energy than reactants, the change in enthalpy $\Delta H = E_{products} - E_{reactants}$ is positive (because $E_{products} > E_{reactants}$). So the correct sign convention is positive ($+\Delta H$).

Answer:

positive ($+\Delta H$)