The concentration of sodium hydroxide is 1.0 M and the concentration of crystal violet is 1.00 x 10-5 M. Identify the limiting reagent and calculate how much of the excess reagent remains after the reaction runs to completion

This question deals with the first part of a common experiment carried out in a lab, where a solution is preperared by mixing certain volume of crystal violet of known concentration with a volume of sodium hydroxide of known concentration, to obtain information about the kinetics of the reaction.

Both volumes must be known too.

To solve the answer you must know the volumes of each solution.

For explanation purposes, I will assume that the solution is prepared by mixing 10.0 mL of the 1.0× 10⁻⁵ M crystal violet with 10.0 mL of the 0.10 M sodium hydroxide.

Crystal violet is the organic compound with unit formula formula: C₂₅N₃H₃₀Cl.

1) Chemical equation:

Crystal violet is an ionic compound and the reaction with sodium hydroxied may be represented as folllows:

C₂₅N₃H₃₀Cl + NaOH → C₂₅N₃H₃₀OH + NaCl

2) Mole ratio:

1 mol C₂₅N₃H₃₀Cl : 1 mol NaOH : 1 mol C₂₅N₃H₃₀OH : 1 mol NaCl

So by each mol of crystal violet 1 mol of sodium hydroxide react.

3) Calculate the number of moles of each reactant:

Molarity: M = n / V (in liters) ⇒ n = M × V

Crystal violet: n = 10.0 ml × 1 liter / 1,000 ml × 1.00×10 ⁻⁵ M = 1.00×10⁻⁷ mol

Sodium hydroxide: 10.0 ml × 1 liter / 1,000 ml × 0.1 M = 1.00×10⁻³ mol

3) Limiting reactant:

Since, as per the theoretical mole ratio, 1.00×10⁻⁵ mol of crystal violet will react with the same number of moles of sodium hydroxide, the former is the limiting reactant.

4) Excess reagent:

The excess reagent is sodium chloride. The amount of excess reagent that remains after the reaction runs to completion is calculated by:

Remain reagent = Initial amount - amount that reacted

Since the mole ratio is 1 : 1, 1.00×10⁻⁵ mol of crystal violet react with 1.00×10⁻⁵ mol of sodium hydroxide, and the amount of sodium hydroxide that remains after the reaction runs to completion is:

1.00×10⁻³ mol - 1.00×10⁻⁵ mol = 0.00100 mol - 0.0000100 mol = 0.00099 mol (sodium hydroxide)

Larus Larus · Answer 2 · 2022-02-03T15:44:25+01:00

The limiting reagent is crystal violet and the percent of excess reagent is 99.99%.

Based on the given information,

• The concentration of NaOH is 1.0 M, and the concentration of crystal violet is 1.00 × 10⁻⁵ M.

• The reaction between the sodium hydroxide and crystal violet will be,

CV + NaOH ⇒ Alcohol (product)

• Based on the reaction, 1 mole of crystal violet reacts with 1 mole of NaOH.

• Let us consider that the volume of the solution is 1 L, therefore, all the concentrations of the reactants are equivalent to the number of the moles.

• Therefore, the number of moles of crystal violet is 0.00001 moles and the number of moles of sodium is 1 mole.

• As the concentration of crystal violet is less, thus, the limiting reagent will be crystal violet.

Now, 1 mole of crystal violet reacts with 1 mole of NaOH. Therefore, 0.00001 mole of crystal violet reacts with 0.00001 mole of NaOH.

The amount of NaOH remaining is,

[tex]= 1-0.00001\\= 0.99999[/tex]

The percent of excess reagent is,

[tex]= \frac{0.99999}{1} *100\\\= 99.99 percent[/tex]

Thus, the limiting reagent is crystal violet and the percent of excess reagent is 99.99%.

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