DP Chemistry (last assessment 2024)

Question 17N.2.sl.TZ0.1c

Date	November 2017	Marks available	[Maximum mark: 2]	Reference code	17N.2.sl.TZ0.1c
Level	sl	Paper	2	Time zone	TZ0
Command term	Calculate	Question number	c	Adapted from	N/A

[Maximum mark: 2]

17N.2.sl.TZ0.1c

A student titrated an ethanoic acid solution, CH₃COOH (aq), against 50.0 cm³ of 0.995 mol dm^–3 sodium hydroxide, NaOH (aq), to determine its concentration.

The temperature of the reaction mixture was measured after each acid addition and plotted against the volume of acid.

(c)

Calculate the concentration of ethanoic acid, CH₃COOH, in mol dm^–3.

[2]

Markscheme

ALTERNATIVE 1

«volume CH₃COOH =» 26.0 «cm³»

«[CH₃COOH] = 0.995 mol dm^–3 $ \times \frac{{50.0\,{\text{cm³}}}}{{26.0\,{\text{cm³}}}} = $» 1.91 «mol dm⁻³»

ALTERNATIVE 2

«n(NaOH) =0.995 mol dm^–3 x 0.0500 dm³ =» 0.04975 «mol»

«[CH₃COOH] = $\frac{{0.04975}}{{0.0260}}$ dm³ =» 1.91 «mol dm^–3»

Accept values of volume in range 25.5 to 26.5 cm³.