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What is the pH of a 0.018 mol L<sup>−1</sup> solution of hydrochloric acid? (A) 0.74 (B) 0.96 (C) 1.04 (D) 1.74 - HSC - SSCE Chemistry - Question 19 - 2060 - Paper 1

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Question 19

What-is-the-pH-of-a-0.018-mol-L<sup>−1</sup>-solution-of-hydrochloric-acid?-(A)-0.74-(B)-0.96-(C)-1.04-(D)-1.74-HSC-SSCE Chemistry-Question 19-2060-Paper 1.png

What is the pH of a 0.018 mol L<sup>−1</sup> solution of hydrochloric acid? (A) 0.74 (B) 0.96 (C) 1.04 (D) 1.74

Worked Solution & Example Answer:What is the pH of a 0.018 mol L<sup>−1</sup> solution of hydrochloric acid? (A) 0.74 (B) 0.96 (C) 1.04 (D) 1.74 - HSC - SSCE Chemistry - Question 19 - 2060 - Paper 1

Step 1

Calculate the pH of the solution

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Answer

To calculate the pH of a hydrochloric acid (HCl) solution, we can use the formula:

pH=log[H+]pH = -\log[H^+]

Since HCl is a strong acid, it completely dissociates in solution. Therefore: [H+]=[HCl]=0.018mol L1[H^+] = [HCl] = 0.018 \, \text{mol L}^{-1}

Now, substituting into the pH formula:

pH=log(0.018)pH = -\log(0.018)

Calculating:

pH=(1.744)1.04pH = -(-1.744) \approx 1.04

Thus, the pH of the solution is approximately 1.04.

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