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5 November, 07:32

Calculate the concentrations of all species present in a 0.25-M solution of ethylammonium chloride (C2H5NH3Cl).

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Answers (2)
  1. 5 November, 07:48
    0
    Concentration of carbon = 0.074 M

    Concentration of hydrogen = 0.025 M

    Concentration of nitrogen = 0.043 M

    Concentration of chlorine = 0.108 M

    Explanation:

    Molar mass of C2H5NH3Cl = 81.5g/mole

    Concentration of C2H5NH3Cl = 0.25 M

    Concentration of C = 24/81.5*0.25 = 0.074 N

    Concentration of H = 8/81.5*0.25 = 0.025 M

    Concentration of N = 14/81.5*0.25 = 0.043 M

    Concentration of Cl = 35.5/81.5*0.25 = 0.108 M
  2. 5 November, 07:51
    0
    The molar mass of C2H5NH3Cl = (2*12) + (5*1) + (14) + (3*1) + 35.5 = 24+5+14+3+35.5 = 81.5

    for carbon:

    24/81.5 x 0.25M = 0.074M

    for H:

    8/81.5 x 0.25M = 0.0245M

    for N:

    14/81.5 x 0.25M = 0.0429M

    for Cl:

    35.5/81.5 x 0.25M = 0.1088M
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