Order with respect to H2O2: Order with respect to KI: Rate constant value Trial 1 ______________ Trial 2 ______________ Trial 3 ______________ Average _____________ Write the complete rate law for this reaction
The rate expression for the reaction between H2O2 and KI is:
rate = k[H2O2]m [KI]n
where: k = rate constant
m = order of reaction with respect to H2O2
n = order of reaction with respect to KI
Table 2: Molarity of H2O2 and KI and Reaction Rate
Trial |
H2O2 Concentration, M |
KI Concentration, M |
Reaction Rate |
1 |
0.29 M |
0.40 M |
14.08 |
2 |
0.29 M |
0.20M |
25 |
3 |
0.023 M |
0.40 M |
20 |
please help me with this part and please show me all steps
- Order with respect to H2O2:
- Order with respect to KI:
Rate constant value
Trial 1 ______________
Trial 2 ______________
Trial 3 ______________
Average _____________
Write the complete rate law for this reaction
data:image/s3,"s3://crabby-images/ffa3e/ffa3e7bdb822ee9608ea259ab7b12658ce3504fa" alt="Test Data:
1.
Table 1 contains the concentrations of H2O2 and IKI used in each
trial. IKI stands for iodine-KI reagent.
Table 1. Concentrations of H,O, and IKI Used
Trial
H,O,
IKI
1
5 mL of 3% H,02
10 mL of 0.60M KI
5 mL of 3% H,0,
10 mL of 0.30M KI
5 mL of 2.25% H,0,
10 mL of 0.60 M KI
3.
O Inglés (Estados Unidos)
OConcentración
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