KCET · Chemistry · Surface Chemistry
During the adsorption of krypton on activated charcoal at low temperature
- A \(\Delta \mathrm{H}>0\) and \(\Delta \mathrm{S} < 0\)
- B \(\Delta \mathrm{H} < 0\) and \(\Delta \mathrm{S} < 0\)
- C \(\Delta \mathrm{H}>0\) and \(\Delta \mathrm{S}>0\)
- D \(\Delta \mathrm{H} < 0\) and \(\Delta \mathrm{S}>0\)
Answer & Solution
Correct Answer
(B) \(\Delta \mathrm{H} < 0\) and \(\Delta \mathrm{S} < 0\)
Step-by-step Solution
Detailed explanation
Adsorption is an exothermic process, thus \(\Delta H\) is negative (ie, \(\Delta \mathrm{H} < 0\) ). Moreover, adsorption results in more ordered arrangements of molecules, thus entropy decreases (ie, \(\Delta \mathrm{S} < 0\) ).
\[
\Delta \mathrm{G}=\Delta \mathrm{H}-\mathrm{T} \Delta \mathrm{S}
\]
Hence, low temperature favours the reaction.
\[
\Delta \mathrm{G}=\Delta \mathrm{H}-\mathrm{T} \Delta \mathrm{S}
\]
Hence, low temperature favours the reaction.
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