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18 July, 04:17

Lulu Labwrecker carefully pipets 25.0 mL of 0.525 M NaOH into a test tube. She places the test tube into a small beaker to keep it from spilling and then pipets 75.0 mL of 0.355 M HCl into another test tube. When Lulu reaches to put this test tube of acid into the beaker along with test tube of base she accidentally knocks the test tubes together hard enough to break them and their respective contents combine in the bottom of the beaker. Is the solution formed from the contents of the two test tubes acidic or basic? What is the pH of the resulting solution?

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  1. 18 July, 04:21
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    The solution formed is acidic

    pH = 0.87

    Explanation:

    The acid-base reaction of NaOH with HCl is:

    NaOH + HCl → NaCl + H₂O

    Where 1 mole of NaOH reacts with 1 mole of HCl

    In the problem, moles of NaOH and HCl are:

    NaOH: 0.0250L * (0.525mol / L) = 0.013125 moles NaOH

    HCl: 0.0750 * (0.355mol / L) = 0.026625 moles HCl

    As moles of HCl > moles NaOH, HCl is in excess and the solution formed is acidic

    Moles in excess of HCl are:

    0.026625 moles - 0.013125 moles = 0.0135 moles HCl

    As the volume of the solutions is 25.0mL + 75.0mL = 100.0mL = 0.100L, molarity of HCl after reaction is:

    0.0135 moles HCl / 0.100L = 0.135M HCl = 0.135M H⁺

    As pH is defined as - log [H⁺], pH of the solution is:

    pH = - log 0.135M H⁺ = 0.87

    pH = 0.87
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