8) The overall reaction is:
OCl- + I- = Cl- + OI-
It is observed that the correct response is C, HOCl is a catalyst.
9) If the HI product is added, the reverse reaction increases its speed, and the forward reaction is low. Option D.
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Consider the following reaction mechanism: Step 1 OCI + H2O → HOCI + OH Step 2...
8. The rate law for the reaction H2O2 + 2H+212 + 2H2O is rate-k[H202][1]. The following mechanism has been suggested. H2O2+1 - HOI + OH - slow OH + H H20 fast HỘI + H+ + + I2 + H2O fast Identify all intermediates included in this mechanism. A) H and I D) Honly B) H and HOI E) H20 and OH C) HOI and OH 9. Which of the following statements is false? A) A catalyst increases the rate...
H2O2 + 3 I- + 2 H+ → I3- + 2 H2O Step 1. H2O2 + H+ → H3O2+ Step 2. H3O2+ + I- → H2O + HOI Step 3. HOI + I- → OH- + I2 Step 4. OH- + H+ → H2O Step 5. I2 + I- → I3- How many of the following statements are correct based on the information given? 1. I3- is a product of this reaction 2. I2 is a reactant in this reaction...
. The solution reaction is believed to use the following mechanism RXN: I- + OCl- = OI- + Cl- 1) OCl- + H2O = HOCl + OH- (k1,k-1 both fast) 2) I- + HOCl -> HOI + Cl- (k2 slow) 3) HOI + OH- = H2O + OI- (k3, k-3 both fast) Derive the rate law. (show work)
For the reaction H2O2 + 2H+ + 2I – ® I2 + 2H2O the following mechanism has been suggested. H2O2 + I – ® HOI + OH – slow OH – + H+ ® H2O fast HOI + H+ + I – ® I2 + H2O fast Identify the rate law for the reaction and explain why
At 25°C, K = 0.090 for the following reaction. H20(g) Cl20(g)2 HOCI(g) Calculate the concentrations of all species at equilibrium for each of the following cases. (a) 1.3 g H20 and 2.0 g Cl20 are mixed in a 1.1-L flask. [Cl20] [H2O] 四 (b) 1.5 mol pure HOCI is placed in a 1.7-L flask Cl20] [H2O]
At 25°C, K = 0.090 for the following reaction. H2O(g) + Cl2O(g) ⇌ 2 HOCl(g) Calculate the concentrations of all species at equilibrium for each of the following cases. (a) 1.0 g H2O and 2.0 g Cl2O are mixed in a 1.1 L flask. [HOCl]_______ M [Cl2O]_______ M [H2O]_______ M (b) 1.2 mol pure HOCl is placed in a 2.2 L flask [HOCl]______ M [Cl2O]______ M [H2O]______ M
A reaction profile (not to scale!) for the reaction C2H5OH + Br® C2H5Br + OH” is shown below: E (KJ) C2H5Br + OH 161 C2H5OH + Br" Reaction Coordinate According to the collision theory of reaction rates, which of the following are true? Choose all that apply. Increasing the concentrations of C,H,OH + Br" would increase the rate of the forward reaction. In the presence of a catalyst, the value of Ea for the forward reaction would be smaller than...
Please answer all four of
these questions and explain WHY. I don't understand any of this.
Thank you!
Consider the following reaction: 2 SO2(g)O2(g)2 SO3(g) If 1.55 moles of SO2 and 1.55 moles of O2 are added to an empty sealed container: What is the rate of the reverse reaction BEFORE any SO3 has been formed? Greater than zero, and greater than the rate of the forward reaction. What is the rate of the reverse reaction an instant AFTER some...
10. The hydration of CO2 from the atmosphere according to the
reaction CO2(g) + H2O(l) HCO3–(aq) + H+(aq)
can be catalyzed by the enzyme carbonic anhydrase. Consider how
a catalyst works. Will the catalyst affect the rate of both the
forward and reverse reactions? Explain your reasoning.
10. The hydration of CO2 from the atmosphere according to the reaction CO2(e) + H20(1) HCO3(aq) + H+(aq) can be catalyzed by the enzyme carbonic anhydrase. Consider how a catalyst works. Will the...
Suppose a reaction occurs with the following mechanism: Step 1: 2AD Step 2: D+E- (fast) B+C (slow) 1. What is the overall reaction? [Select] 2. What is the intermediate in the mechanism? (Select] 3. What is the molecularity of step 1? (Select 4. Which step is the rate determining step? [Select) 5. What is the rate law predicted by this mechanism? [Select) Question 22 15 pts Consider the following reaction at equilibrium: CO(g) + 2H2(g) CH2OH(g) AH=-18 kJ How will...