The $Δ H$ and $Δ S$ for a reaction at one atmospheric pressure are +30.558 kJ and 0.066 k J $k^{- 1}$ respectively. The temperature at which the free energy change will be zero and below this temperature the nature of reaction would be:

483 K, spontaneous

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443 K, non-spontaneous

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443 K, spontaneous

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463 K, non-spontaneous

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Solution

The correct option is D
463 K, non-spontaneous

Now, to get T, let's use
$△ G$ = $△ H - T △ S$
Here, $△ H = + 30.558 K J$
$△ S = 0.066 k J k^{- 1}$
$△ G = 0$
$\Rightarrow 0 = 30.558 - T \times 0.066$
$\Rightarrow T = \frac{30.558}{0.066} = 463 K$
Now, at 463 $K \Rightarrow △ G$ = 0
If we go below 463 K, $T △ S$ value will decrease and $△ G$ value will become positive.
Therefore, non-spontaneous

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The $Δ H$ and $Δ S$ for a reaction at one atmospheric pressure are +30.558 kJ and 0.066 k J $k^{- 1}$ respectively. The temperature at which the free energy change will be zero and below this temperature the nature of reaction would be:

The $△ H$ and $△ S$ for a reaction at one atmospheric pressure are +30.558 kJ and 0.066 k J $k^{- 1}$ respectively. The temperature at which the free energy change will be zero and below of this temperature the nature of reaction would be