In January 2025
Answer to Question #322485 in General Chemistry for yow
Titration of 0.7865 g sample of pure potassium hydrogen phthalate requires 35.73 ml of a NaOH solution. Calculate the molarity of the NaOH solution. This acid base reaction is:
NaOH + KHCgHD, NaKCH40+ H₂O
m(KHPh) = 0.7865 g;
M(KHPh) = 204 g/mol;
n(KHPh) = m(KHPh)/M(KHPh) = 0.7865/204 = 0.0039 mol;
V(NaOH) = 35.73 mL = 0.03575 L;
M(NaOH) = 40 g/mol;
NaOH + KHPh = NaKPh+ H2O;
By the chemical reaction:
n(NaOH) = n(KHPh) = 0.0039 mol;
C(NaOH) = n(NaOH)/M(NaOH) = 0.0039/0.03575 = 0.11 M.
Answer: 0.11 M.
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