At , the ionic product of water () is 55 times its value at . What will be the exact pH of a neutral — Ionic Equilibrium Chemistry Question
Question
At $100^\circ C$, the ionic product of water ($K_w$) is 55 times its value at $25^\circ C$. What will be the exact pH of a neutral aqueous solution at $100^\circ C$? (Given $\log 55 = 1.74$)
Answer: B
💡 Solution & Explanation
At $25^\circ C$, $K_w = 10^{-14}$. At $100^\circ C$, $K_w = 55 \times 10^{-14}$. A neutral solution has $[H^+] = [OH^-] = \sqrt{K_w}$. Thus, $[H^+] = \sqrt{55 \times 10^{-14}}$. Taking the negative logarithm, $pH = -\frac{1}{2}\log(55 \times 10^{-14}) = -\frac{1}{2}(\log 55 - 14) = -\frac{1}{2}(1.74 - 14) = -\frac{1}{2}(-12.26) = 6.13$.
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