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9 July, 19:06

Consider the following reaction: NaHCO3 + HC2H3O2 → NaC2H3O2 + H2O + CO2 How many mol of CO2 would be produced from the complete reaction of 25 mL of 0.833 mol/L HC3H3O2 with excess NaHCO3?

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  1. 9 July, 19:35
    0
    0.208mole of CO2

    Explanation:

    First, let us calculate the number of mole of HC3H3O2 present.

    Molarity of HC3H3O2 = 0.833 mol/L

    Volume = 25 mL = 25/100 = 0.25L

    Mole = ?

    Mole = Molarity x Volume

    Mole = 0.833 x 0.25

    Mole of HC3H3O2 = 0.208mole

    Now, we can easily find the number of mole of CO2 produce by doing the following:

    NaHCO3 + HC2H3O2 → NaC2H3O2 + H2O + CO2

    From the equation,

    1mole of HC2H3O2 produced 1 mole of CO2.

    Therefore, 0.208mole of HC2H3O2 will also produce 0.208mole of CO2
  2. 9 July, 22:39
    0
    For 0.0208 moles CH2H3O2 we'll have 0.0208 moles CO2 produced

    Explanation:

    Step 1: Data given

    Volume of HC2H3O2 = 25 mL = 0.025 L

    Concentration of HC2H3O2 = 0.833 mol / L

    NaHCO3 is in excess

    Step 2: The balanced equation

    NaHCO3 + HC2H3O2 → NaC2H3O2 + H2O + CO2

    For 1 mol NaHCO3 we need 1 mol HC2H3O2 to produce 1 mol NaC2H3O2, 1 mol H2O and 1mol CO2

    Step 3: Calculate moles HC2H3O2

    Moles HC2H3O2 = concentration HC2H3O2 * volume solution

    Moles HC2H3O2 = 0.833 mol/L * 0.025 L

    Moles HC2H3O2 = 0.0208 moles

    Step 4: calculate moles CO2

    For 1 mol NaHCO3 we need 1 mol HC2H3O2 to produce 1 mol NaC2H3O2, 1 mol H2O and 1mol CO2

    For 0.0208 moles CH2H3O2 we'll have 0.0208 moles CO2 produced
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