During isothermal expansion of one mole of an ideal gas from 10 atm to 1 atm at 273 K, the work done is:

– 895.8 cal

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– 1172.6 cal

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– 1257.43 cal

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– 1499.6 cal

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Solution

The correct option is C – 1257.43 cal
Work done in a reversible isothermal process of gas (w) = $- 2.303 \times n R T l o g \frac{P_{1}}{P_{2}}$ ,
where, n is the number of moles,
R is the gas constant,
T is temperature and
$P_{1}$ and $P_{2}$ are the initial and final pressure of the gas.

According to the given conditions,
w = $- 2.303 \times 1 \times 2 \times 273 l o g \frac{10}{1}$
= –1257.43 cal.

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