In November 2024
Answer to Question #310621 in Physical Chemistry for atenz
Given that at body temperature, Kw = 10^-13.6, what is the pH of neutral water at body temperature?
Kw = 10-13.6;
H2O = H+ + OH-;
Kw = [H+] * [OH-] =10-13.6;
If to use neutral water then: [H+] = [OH-];
Therefore, 10-13.6 = x2;
x = SQRT(10-13.6) = 10-6.8;
[H+] = 10-6.8;
pH = -log[H+] = 6.8.
Answer: 6.8.
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